110907-2fruFill [VFB_00030670]
[confocal microscopy; 110907-2fruFill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 110907-2fruFill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; JRC2018Unisex; adult fruitless aSP-f (male) neuron; 110908-4fruFill; adult brain template JFRC2]
[110911-1fruFill; confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 110911-5fruFill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 120306-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120308-JK1029fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120309-JK1029fill; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120313-JK1029fill; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; 120319-1JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 120322-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 120326-2-JK1029fill]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120404-JK56fill]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120417-JK1029fill]
[confocal microscopy; 120418-2JK1029fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120420-JK1029fill]
[confocal microscopy; adult fruitless aSP-h (male) neuron; 120421-1JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120421-4JK1029fill; JRC2018Unisex; adult fruitless aSP-f (male) neuron; adult brain template JFRC2]
[120424-JK1029fill; confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120425-JK1029fill]
[120502-1JK1029fill; confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; 120502-JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120503-JK1029fill]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120508-1JK1029fill]
[confocal microscopy; adult fruitless aSP-h (male) neuron; 120508-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; 120514-JK1029fill; adult brain template JFRC2]
[confocal microscopy; 120521-JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; 120522-2JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; 120522-4JK1029fill; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; 120524-JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120529-5JK1029fill]
[confocal microscopy; adult brain template JFRC2; adult fruitless aSP-h (female) neuron; JRC2018Unisex; 120529-6JK1029fill]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; 120529-JK1029fill; adult brain template JFRC2]
[confocal microscopy; 120530-JK1029fill; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120614-1JK1029fill]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron; 120614-3JK1029fill]
[confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120614-JK1029fill]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron; 120616-1JK1029fill]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 120710-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (male) neuron; 120713-3JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120713-4JK1029fill]
[confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120716-4JK1029fill]
[confocal microscopy; adult fruitless aSP-g (male) neuron; 120716-6JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[120716-9JK1029fill; confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; 120717-4JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; 120717-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; 120718-2JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[120718-JK1029fill; confocal microscopy; adult fruitless aSP-h (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; 120723-1JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120723-3JK1029fill]
[confocal microscopy; 120723-4JK1029fill; adult fruitless aSP-g (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120725-JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; 120726-1JK1029fill; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2; 120726-2JK1029fill]
[confocal microscopy; 120726-JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[120727-1JK1029fill; confocal microscopy; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120727-JK1029fill; adult fruitless aSP-h (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron; 120730-JK1029fill]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; 120731-1JK1029fill; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron; 120731-2JK1029fill]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120810-JK56fill]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; 120811-1JK56fill; adult brain template JFRC2]
[confocal microscopy; 120811-2JK56fill; JRC2018Unisex; adult fruitless aSP-f (male) neuron; adult brain template JFRC2]
[confocal microscopy; 120811-JK56fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120812-1JK56fill]
[confocal microscopy; 120812-2JK56fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120814-3JK56fill; JRC2018Unisex; adult fruitless aSP-f (male) neuron; adult brain template JFRC2]
[confocal microscopy; 120814-JK56fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; 120815-2JK56fill; adult brain template JFRC2]
[confocal microscopy; 120815-3JK56fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[120815-JK56fill; confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; 120816-JK56fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; 120817-JK56fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120818-JK56fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; adult brain template JFRC2; JRC2018Unisex; 120820-JK56fill]
[120823-2JK56fill; confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 120823-3JK56fill; JRC2018Unisex; adult brain template JFRC2]
[120824-1JK56fill; confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 120825-2JK56fill; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 120825-JK56fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2; 120925-JK1029fill]
[120926-JK1029fill; confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 121120-3JK1029fill]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 121120-4JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 121120-JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 121121-4JK1029fill]
[confocal microscopy; 121122-2JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 121122-3JK1029fill]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 121122-4JK1029fill]
[confocal microscopy; 121122-JK1029fill; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 121123-3JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 121123-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; adult brain template JFRC2; JRC2018Unisex; 121126-3JK1029fill]
[121126-4JK1029fill; confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 121126-JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 121127-1JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; 121127-2JK1029fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; 121127-3JK1029fill; adult fruitless aSP-f (male) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2; 121127-JK1029fill]
[confocal microscopy; adult fruitless aSP-f (female) neuron; JRC2018Unisex; 121128-12JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult brain template JFRC2; 121128-1JK1029fill; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
[confocal microscopy; 121128-4JK1029fill; adult fruitless aSP-f (female) neuron; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (female) neuron; 121129-1JK1029fill; JRC2018Unisex; adult brain template JFRC2]
[confocal microscopy; adult brain template JFRC2; JRC2018Unisex; 121129-JK1029fill; adult fruitless aSP-g (female) neuron]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; 121130-1JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-f (male) neuron; JRC2018Unisex; 121130-2JK1029fill; adult brain template JFRC2]
[confocal microscopy; adult fruitless aSP-h (female) neuron; JRC2018Unisex; 121130-JK1029fill; adult brain template JFRC2]
[confocal microscopy; 121208-1JK1029fill; adult brain template JFRC2; JRC2018Unisex; adult fruitless aSP-g (female) neuron]
Sclerite of the wing hinge that articulates with the notal wing processes and the 2nd axillary sclerite. Its anterior end is immediately posterior to the humeral sclerite (FBbt:00004734).
Wing cell (intervein) region distal to the anterior cross-vein and bounded by longitudinal veins L3 and L4. See FBrf0066905 == Lindsley and Zimm, 1992 for a good schematic identifying wing cells (intervein).
pruned, left soma, motor neuron, labeling method: 21G01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; transmission electron microscopy (TEM); 21G01-LexA_190919_vnc2_neuronL_left - pruned by vol 109 - radius 500 (FANC:625424); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; system; adult nervous system; adult ventral nerve cord; is part of; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location]
T1 leg motor neuron, source: Tuthill lab, sample identifier: 190919_vnc2, labeling method: 21G01-LexA, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; 21G01-LexA_190919_vnc2_neuronL_left - pruned by vol 109 (FANC:625254)]
left soma, motor neuron, labeling method: 21G01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; 21G01-LexA_190919_vnc2_neuronL_left (FANC:541670); is part of]
right soma, motor neuron, labeling method: 21G01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; 21G01-LexA_190919_vnc2_neuronL_right (FANC:541627)]
pruned, left soma, motor neuron, labeling method: 22A08-Gal4, dye fill, sample identifier: 190908_F1_C1, source: Tuthill lab, template registration: 191025 elastix 24spacing, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; system; adult nervous system; adult ventral nerve cord; is part of; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location; 22A08-Gal4_190908_F1_C1_left - pruned by vol 109 - radius 500 (FANC:625407)]
T1 leg motor neuron, template registration: 191025 elastix 24spacing, source: Tuthill lab, sample identifier: 190908_F1_C1, labeling method: 22A08-Gal4, dye fill, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; neuron; 22A08-Gal4_190908_F1_C1_left - pruned by vol 109 (FANC:625284)]
left soma, motor neuron, labeling method: 22A08-Gal4, dye fill, sample identifier: 190908_F1_C1, source: Tuthill lab, template registration: 191025 elastix 24spacing, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; neuron; 22A08-Gal4_190908_F1_C1_left (FANC:541715)]
right soma, motor neuron, labeling method: 22A08-Gal4, dye fill, sample identifier: 190908_F1_C1, source: Tuthill lab, template registration: 191025 elastix 24spacing, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; 22A08-Gal4_190908_F1_C1_right (FANC:541692); adult nervous system; JRC2018UnisexVNC; is part of; neuron]
A small, irregularly shaped sclerite of the wing hinge, located immediately distal to the 1st axillary sclerite (FBbt:00004738) with which it articulates.
Wing cell (intervein) region bounded by L4, L5 and the posterior cross-vein. See FBrf0066905 == Lindsley and Zimm, 1992 for a good schematic identifying wing cells (intervein).
pruned, left soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; 33C10-LexA_190919_vnc1_neuronL_left - pruned by vol 109 - radius 500 (FANC:625440); transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; system; adult nervous system; adult ventral nerve cord; is part of; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location]
T1 leg motor neuron, source: Tuthill lab, sample identifier: 190919_vnc1, labeling method: 33C10-LexA, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; 33C10-LexA_190919_vnc1_neuronL_left - pruned by vol 109 (FANC:625223); adult nervous system; JRC2018UnisexVNC; is part of]
left soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; 33C10-LexA_190919_vnc1_neuronL_left (FANC:541572)]
right soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; 33C10-LexA_190919_vnc1_neuronL_right (FANC:541769)]
pruned, left soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 33C10-LexA_190919_vnc1_neuronR_left - pruned by vol 109 - radius 500 (FANC:625472); adult neuron; system; adult nervous system; adult ventral nerve cord; is part of; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location]
T1 leg motor neuron, source: Tuthill lab, sample identifier: 190919_vnc1, labeling method: 33C10-LexA, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; 33C10-LexA_190919_vnc1_neuronR_left - pruned by vol 109 (FANC:625239); is part of]
left soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron [33C10-LexA_190919_vnc1_neuronR_left (FANC:541606); female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
right soma, motor neuron, labeling method: 33C10-LexA, sample identifier: 190919_vnc1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 33C10-LexA_190919_vnc1_neuronR_right (FANC:541584); adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
left soma, motor neuron, labeling method: 35C09-Gal4, dye fill, sample identifier: 190819_F2_C1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 35C09-Gal4_190819_F2_C1_left (difficult alignment, low quality) (FANC:541648); adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; neuron]
right soma, motor neuron, labeling method: 35C09-Gal4, dye fill, sample identifier: 190819_F2_C1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; 35C09-Gal4_190819_F2_C1_right (difficult alignment, low quality) (FANC:541616)]
pruned, left soma, motor neuron, sample identifier: 190819_F2_C2, source: Tuthill lab, labeling method: 35C09-Gal4, T1 leg motor neuron, pruned to nodes with radius 500 [35C09-Gal4_190819_F2_C2_left - pruned by vol 109 - radius 500 (FANC:625456); female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; system; adult ventral nerve cord; is part of; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location]
T1 leg motor neuron, labeling method: 35C09-Gal4, source: Tuthill lab, sample identifier: 190819_F2_C2, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; 35C09-Gal4_190819_F2_C2_left - pruned by vol 109 (FANC:625300); JRC2018UnisexVNC; is part of; neuron]
left soma, motor neuron, sample identifier: 190819_F2_C2, source: Tuthill lab, labeling method: 35C09-Gal4, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); 35C09-Gal4_190819_F2_C2_left (FANC:541558); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
right soma, motor neuron, sample identifier: 190819_F2_C2, source: Tuthill lab, labeling method: 35C09-Gal4, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; 35C09-Gal4_190819_F2_C2_right (FANC:541681); adult nervous system; JRC2018UnisexVNC; is part of]
left soma, motor neuron, labeling method: 35C09-Gal4, dye fill, sample identifier: 190923_F1_C1, source: Tuthill lab, template registration: 191030 elastix 16spacing, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 35C09-Gal4_190923_F1_C1_left (needs retracing) (FANC:541659); adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
right soma, motor neuron, labeling method: 35C09-Gal4, dye fill, sample identifier: 190923_F1_C1, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; 35C09-Gal4_190923_F1_C1_right (needs retracing) (FANC:541638); is part of; neuron]
A small sclerite of the wing hinge, located immediately anterior to the alula (FBbt:00004747).
Most posterior wing cell (intervein) region - from wing vein L5 to the posterior wing margin. Wing vein L6 marks the proximal boundary. See FBrf0066905 == Lindsley and Zimm, 1992 for a good schematic identifying wing cells (intervein).
The most posterior and proximal of the sclerites of the wing hinge. The proximal end of this sclerite is adjacent to the distal end of the posterior notal wing process.
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-000000; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-F-000001; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-000002; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-F-000003; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-000004; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; posterior ventrolateral protocerebrum; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; 5-HT1B-F-000005; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; anterior ventrolateral protocerebrum; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [5-HT1B-F-100000; epaulette; expression pattern fragment; wedge; vest; adult neuron; gorget; adult lateral accessory lobe; expresses; inferior posterior slope; superior posterior slope; confocal microscopy; FlyCircuit 1.0; adult gnathal ganglion; female organism; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern; posterior ventrolateral protocerebrum; P{GAL4-5-HT1B.Y}; posterior lateral protocerebrum; is part of; JRC2018Unisex; anterior ventrolateral protocerebrum; overlaps]
OutAge: Adult 5~15 days [flange; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-F-200000; expression pattern fragment; is part of; female organism; JRC2018Unisex; superior medial protocerebrum; adult brain; adult BAmas2 lineage neuron; P{GAL4-5-HT1B.Y} expression pattern; overlaps]
OutAge: Adult 5~15 days [expresses; 5-HT1B-F-200001; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [flange; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; superior medial protocerebrum; adult brain; overlaps; 5-HT1B-F-200002; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult crepine; superior clamp; expression pattern fragment; superior medial protocerebrum; superior lateral protocerebrum; superior intermediate protocerebrum; 5-HT1B-F-300000; dorsal anterior lateral neuron of the protocerebrum; expresses; confocal microscopy; FlyCircuit 1.0; female organism; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern; P{GAL4-5-HT1B.Y}; is part of; JRC2018Unisex; overlaps]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-F-300001; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; lobula; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-F-400000; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; pedunculus of adult mushroom body; FlyCircuit 1.0; 5-HT1B-F-400001; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-400002; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-F-400003; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; 5-HT1B-F-400004; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; 5-HT1B-F-500000; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; 5-HT1B-F-500001; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [5-HT1B-F-500002; expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; 5-HT1B-F-500003; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-500004; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; 5-HT1B-F-500005; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-F-500006; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult lateral accessory lobe; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; 5-HT1B-F-500007; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-F-500008]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; 5-HT1B-F-500009; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; 5-HT1B-F-500010; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; 5-HT1B-F-500011; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-F-500012; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-F-500013; P{GAL4-5-HT1B.Y}; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; lobula columnar neuron LC11; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; 5-HT1B-F-500014; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-F-500015]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; lobula columnar neuron LC11; adult brain; 5-HT1B-F-500016; P{GAL4-5-HT1B.Y} expression pattern; overlaps]
OutAge: Adult 5~15 days [expresses; 5-HT1B-F-500017; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; 5-HT1B-F-500018; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; 5-HT1B-F-500019; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-F-500020; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; 5-HT1B-F-500021; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; 5-HT1B-F-500022; P{GAL4-5-HT1B.Y}; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult crepine; expresses; confocal microscopy; adult brain; inferior bridge; P{GAL4-5-HT1B.Y}; antler; adult neuron; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; female organism; JRC2018Unisex; adult lateral accessory lobe; 5-HT1B-F-600000; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult crepine; antler; expression pattern fragment; superior medial protocerebrum; adult neuron; adult lateral accessory lobe; expresses; confocal microscopy; inferior bridge; FlyCircuit 1.0; adult brain; adult brain template JFRC2; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; P{GAL4-5-HT1B.Y}; male organism; 5-HT1B-M-000000; is part of; JRC2018Unisex; overlaps]
OutAge: Adult 5~15 days [adult crepine; expresses; confocal microscopy; 5-HT1B-M-000001; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; pedunculus of adult mushroom body; male organism; FlyCircuit 1.0; 5-HT1B-M-000002; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [flange; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; superior medial protocerebrum; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-M-000003]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-000004; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-000005; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [flange; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-M-000006; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; superior medial protocerebrum; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-000007; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; P{GAL4-5-HT1B.Y} expression pattern; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; 5-HT1B-M-000008; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-100000; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; expression pattern fragment; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; 5-HT1B-M-100001; expression pattern fragment; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; anterior ventrolateral protocerebrum; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-M-100002]
OutAge: Adult 5~15 days [expresses; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; 5-HT1B-M-100003; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; anterior ventrolateral protocerebrum; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-M-200000; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-200001; adult gamma Kenyon cell; P{GAL4-5-HT1B.Y}; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-M-200002; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; anterior ventrolateral protocerebrum; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-M-200003]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; adult brain; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; 5-HT1B-M-300000; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-M-300001]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-300002; adult gamma Kenyon cell; P{GAL4-5-HT1B.Y}; male organism; FlyCircuit 1.0; expression pattern fragment; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult antennal lobe; expression pattern fragment; neuroblast ALv1; adult lateral horn; fasciculates with; expresses; confocal microscopy; FlyCircuit 1.0; mediolateral antennal lobe tract projection neuron; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern; develops from; adult mediolateral antennal lobe tract; adult uniglomerular antennal lobe projection neuron vPN; P{GAL4-5-HT1B.Y}; male organism; 5-HT1B-M-300003; is part of; JRC2018Unisex; overlaps]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern; 5-HT1B-M-300004]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; pedunculus of adult mushroom body; male organism; P{GAL4-5-HT1B.Y} expression pattern; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; 5-HT1B-M-400000; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; 5-HT1B-M-400001; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [5-HT1B-M-400002; expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-M-400003; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; posterior lateral protocerebrum; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; lobula plate; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; 5-HT1B-M-400004; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; 5-HT1B-M-400005; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [saddle; expresses; inferior clamp; superior posterior slope; inferior posterior slope; confocal microscopy; 5-HT1B-M-400006; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; 5-HT1B-M-400007; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; 5-HT1B-M-400008; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-M-400009; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; 5-HT1B-M-400010; P{GAL4-5-HT1B.Y} expression pattern; overlaps]
OutAge: Adult 5~15 days [5-HT1B-M-400011; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; pedunculus of adult mushroom body; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-M-400012; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; 5-HT1B-M-400013; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-400014; adult gamma Kenyon cell; P{GAL4-5-HT1B.Y}; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; 5-HT1B-M-400015; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-M-400016; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; 5-HT1B-M-400017; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; 5-HT1B-M-400018; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; 5-HT1B-M-400019; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; 5-HT1B-M-400020; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-M-500000; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; 5-HT1B-M-500001; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; 5-HT1B-M-500002; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; 5-HT1B-M-500003; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [saddle; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; adult gnathal ganglion; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; 5-HT1B-M-500004; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult antennal lobe; adult fruitless aDT-b (male) neuron; 5-HT1B-M-500005; expression pattern fragment; flange; saddle; vest; superior intermediate protocerebrum; expresses; confocal microscopy; FlyCircuit 1.0; adult gnathal ganglion; adult brain; adult brain template JFRC2; P{GAL4-5-HT1B.Y} expression pattern; P{GAL4-5-HT1B.Y}; male organism; is part of; JRC2018Unisex; overlaps]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; 5-HT1B-M-500006; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; ellipsoid body; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; 5-HT1B-M-500007; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; adult antennal lobe; 5-HT1B-M-500008; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [adult crepine; expresses; confocal microscopy; inferior bridge; P{GAL4-5-HT1B.Y}; antler; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; 5-HT1B-M-600000; JRC2018Unisex; superior medial protocerebrum; adult brain; overlaps; P{GAL4-5-HT1B.Y} expression pattern]
OutAge: Adult 5~15 days [expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult gamma Kenyon cell; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; 5-HT1B-M-700001; P{GAL4-5-HT1B.Y} expression pattern; medial lobe of adult mushroom body]
OutAge: Adult 5~15 days [expresses; confocal microscopy; vertical lobe of adult mushroom body; P{GAL4-5-HT1B.Y}; 5-HT1B-M-700002; male organism; alpha/beta surface Kenyon cell; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [5-HT1B-M-700003; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; male organism; FlyCircuit 1.0; gamma dorsal Kenyon cell; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern; calyx of adult mushroom body]
OutAge: Adult 5~15 days [5-HT1B-M-700004; expresses; confocal microscopy; P{GAL4-5-HT1B.Y}; adult neuron; male organism; FlyCircuit 1.0; adult brain template JFRC2; expression pattern fragment; is part of; JRC2018Unisex; adult brain; overlaps; medial lobe of adult mushroom body; P{GAL4-5-HT1B.Y} expression pattern]
tracing status-Roughly traced, cropped-False [5-HTPLP01_R (FlyEM-HB:1324365879); focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; neuronbridge; is part of; female organism; adult serotonergic PLP neuron; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; adult serotonergic PMPD neuron; neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; 5-HTPMPD01_R (FlyEM-HB:297230760)]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; 5-HTPMPD01(PDM22)_L (FlyEM-HB:297908801); adult serotonergic PMPD neuron; neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; neuronbridge; 5-HTPMPV01_R (FlyEM-HB:5813078603); female organism; is part of; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; adult serotonergic IP neuron]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; neuronbridge; 5-HTPMPV01(PVM16)_L (FlyEM-HB:541697718); is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; adult serotonergic IP neuron]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; 5-HTPMPV03_L (FlyEM-HB:791527493); neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; adult serotonergic IP neuron]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; 5-HTPMPV03_R (FlyEM-HB:669325882); neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; adult serotonergic IP neuron]
pruned, left soma, motor neuron, labeling method: 56H01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; system; 56H01-LexA_190919_vnc2_neuronL_left - pruned by vol 109 - radius 500 (FANC:625391); adult nervous system; is part of; adult ventral nerve cord; JRC2018UnisexVNC; left side of organism; overlaps; peripheral nervous system; has soma location]
T1 leg motor neuron, source: Tuthill lab, sample identifier: 190919_vnc2, labeling method: 56H01-LexA, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; 56H01-LexA_190919_vnc2_neuronL_left - pruned by vol 109 (FANC:625315); JRC2018UnisexVNC; is part of]
left soma, motor neuron, labeling method: 56H01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron [female organism; 56H01-LexA_190919_vnc2_neuronL_left (FANC:541594); transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
right soma, motor neuron, labeling method: 56H01-LexA, sample identifier: 190919_vnc2, source: Tuthill lab, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); 56H01-LexA_190919_vnc2_neuronL_right (FANC:541704); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain; s-LNv neuron; 5th s-LNv (FlyEM-HB:511051477)]
pruned, left soma, motor neuron, left T1 leg nerve, labeling method: 81A07-Gal4, dye fill, sample identifier: 190605_F1_C1, source: Tuthill lab, template registration: 190827 elastix 14spacing, T1 leg motor neuron, pruned to nodes with radius 500 [female organism; transmission electron microscopy (TEM); 81A07-Gal4_190605_F1_C1_left - pruned by vol 109 - radius 500 (FANC:625372); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; system; adult nervous system; overlaps; is part of; adult ventral nerve cord; JRC2018UnisexVNC; left side of organism; neuron; peripheral nervous system; has soma location]
T1 leg motor neuron, template registration: 190827 elastix 14spacing, source: Tuthill lab, sample identifier: 190605_F1_C1, labeling method: 81A07-Gal4, dye fill, left T1 leg nerve, left soma, pruned [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 81A07-Gal4_190605_F1_C1_left - pruned by vol 109 (FANC:625346); adult neuron; adult nervous system; JRC2018UnisexVNC; is part of; neuron]
left soma, motor neuron, left T1 leg nerve, labeling method: 81A07-Gal4, dye fill, sample identifier: 190605_F1_C1, source: Tuthill lab, template registration: 190827 elastix 14spacing, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; adult neuron; adult nervous system; 81A07-Gal4_190605_F1_C1_left (FANC:541726); JRC2018UnisexVNC; is part of]
right soma, motor neuron, right T1 leg nerve, labeling method: 81A07-Gal4, dye fill, sample identifier: 190605_F1_C1, source: Tuthill lab, template registration: 190827 elastix 14spacing, T1 leg motor neuron [female organism; transmission electron microscopy (TEM); VFB CATMAID Adult VNC (FANC) elastic transformation to JRC2018_VNC_Female; 81A07-Gal4_190605_F1_C1_right (FANC:541758); adult neuron; adult nervous system; JRC2018UnisexVNC; is part of]
[is part of; mushroom body alpha' lobe slice 1; a'1(R) on JRC_FlyEM_Hemibrain; adult brain]
[a'2(R) on JRC_FlyEM_Hemibrain; mushroom body alpha' lobe slice 2; is part of; adult brain]
[is part of; a'3(R) on JRC_FlyEM_Hemibrain; adult brain; mushroom body alpha' lobe slice 3]
[adult mushroom body alpha’-lobe; computer graphic; a'L on JRC2018Unisex adult brain]
[adult mushroom body alpha’-lobe; computer graphic; a'L(L) on JRC_FlyEM_Hemibrain]
[adult mushroom body alpha’-lobe; a'L(R) on JRC_FlyEM_Hemibrain; computer graphic]
[a1(R) on JRC_FlyEM_Hemibrain; is part of; mushroom body alpha lobe slice 1; adult brain]
[mushroom body alpha lobe slice 2; a2(R) on JRC_FlyEM_Hemibrain; is part of; adult brain]
[is part of; mushroom body alpha lobe slice 3; adult brain; a3(R) on JRC_FlyEM_Hemibrain]
[asymmetrical body; AB(L) on JRC_FlyEM_Hemibrain; is part of; adult brain; computer graphic]
[asymmetrical body; AB(R) on JRC_FlyEM_Hemibrain; computer graphic]
Dorsal longitudinal muscle of the first adult abdominal segment.
Dorsal longitudinal muscle of the first adult abdominal segment.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It tapers anteriorly to attach to the anterior border of the first abdominal tergite and attaches laterally to this same tergite. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It tapers anteriorly to attach to the anterior border of the first abdominal tergite and attaches laterally to this same tergite. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It tapers anteriorly to attach to the anterior border of the first abdominal tergite and attaches posteriorly to the second abdominal tergite. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It tapers anteriorly to attach to the anterior border of the first abdominal tergite and attaches posteriorly to the second abdominal tergite. It is composed of several fibers.
Lateral tergosternal muscle of abdominal segment 1.
Lateral tergosternal muscle of abdominal segment 1.
Dorsal longitudinal muscle of abdominal segment 1 found in the medial region of the segment. It attaches to the first and second abdominal tergites. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the medial region of the segment. It attaches to the first and second abdominal tergites. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It is smaller than muscle 100, attaching to the anterior border of the first abdominal tergite and laterally to this same tergite.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment. It is smaller than muscle 100, attaching to the anterior border of the first abdominal tergite and laterally to this same tergite.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment, anterior to muscle 100. It is composed of several fibers.
Dorsal longitudinal muscle of abdominal segment 1 found in the lateral region of the segment, anterior to muscle 100. It is composed of several fibers.
Muscle of the abdominal segment 1 that attaches to the first abdominal sternite and to the pleura.
Muscle of the abdominal segment 1 that attaches to the first abdominal sternite and to the pleura.
One of the two oblique sternopleural muscles of abdominal segment 1.
One of the two oblique sternopleural muscles of abdominal segment 1.
One of the two oblique sternopleural muscles of abdominal segment 1.
One of the two oblique sternopleural muscles of abdominal segment 1.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 1 (FBbt:00003025) and attached to some adult abdominal spiracle 1 (FBbt:00014816).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 1 (FBbt:00003025) and attached to some adult abdominal spiracle 1 (FBbt:00014816).
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 lateral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 lateral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 ventral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 ventral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 ventral longitudinal muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 1 that develops from abdominal 1 ventral longitudinal muscle 2 of the larva by a process of remodeling.
Ventral longitudinal muscle of abdominal segment 1 that extends anterioposteriorly. It attaches medially to the abdominal apophysis and posteriorly to the second abdominal sternite.
Ventral longitudinal muscle of abdominal segment 1 that extends anterioposteriorly. It attaches medially to the abdominal apophysis and posteriorly to the second abdominal sternite.
Dorsal muscle group of adult abdominal segment A2.
Dorsal muscle group of adult abdominal segment A2.
Lateral tergosternal muscle of abdominal segment 2.
Lateral tergosternal muscle of abdominal segment 2.
Oblique dorsal muscle of abdominal segment 2.
Oblique dorsal muscle of abdominal segment 2.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 2 (FBbt:00003026) and attached to some adult abdominal spiracle 2 (FBbt:00014815).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 2 (FBbt:00003026) and attached to some adult abdominal spiracle 2 (FBbt:00014815).
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 lateral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 lateral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 ventral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 ventral longitudinal muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 ventral longitudinal muscle 2 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 2 ventral longitudinal muscle 2 of the larva by a process of remodeling.
Abdominal ventral muscle group of adult abdominal segment A2.
Abdominal ventral muscle group of adult abdominal segment A2.
Dorsal muscle group of adult abdominal segment A3.
Dorsal muscle group of adult abdominal segment A3.
Lateral tergosternal muscle of abdominal segment 3.
Lateral tergosternal muscle of abdominal segment 3.
Oblique dorsal muscle of abdominal segment 3.
Oblique dorsal muscle of abdominal segment 3.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 3 (FBbt:00003027) and attached to some adult abdominal spiracle 3 (FBbt:00004815).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 3 (FBbt:00003027) and attached to some adult abdominal spiracle 3 (FBbt:00004815).
Temporary eclosion muscle of adult abdominal segment 3 that develops from abdominal 3 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 3 that develops from abdominal 3 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 3 that develops from abdominal 3 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 3 that develops from abdominal 3 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 3 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 2 that develops from abdominal 3 segment border muscle of the larva by a process of remodeling.
Abdominal ventral muscle group of adult abdominal segment A3.
Abdominal ventral muscle group of adult abdominal segment A3.
Dorsal muscle group of adult abdominal segment A4.
Dorsal muscle group of adult abdominal segment A4.
Lateral tergosternal muscle of abdominal segment 4.
Lateral tergosternal muscle of abdominal segment 4.
Oblique dorsal muscle of abdominal segment 4.
Oblique dorsal muscle of abdominal segment 4.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 4 (FBbt:00003028) and attached to some adult abdominal spiracle 4 (FBbt:00004816).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 4 (FBbt:00003028) and attached to some adult abdominal spiracle 4 (FBbt:00004816).
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 dorsal acute muscle 3 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 4 that develops from abdominal 4 segment border muscle of the larva by a process of remodeling.
Abdominal ventral muscle group of adult abdominal segment A4.
Abdominal ventral muscle group of adult abdominal segment A4.
Dorsal muscle group of adult abdominal segment A5.
Dorsal muscle group of adult abdominal segment A5.
Lateral tergosternal muscle of abdominal segment 5.
Lateral tergosternal muscle of abdominal segment 5.
Oblique dorsal muscle of abdominal segment 5.
Oblique dorsal muscle of abdominal segment 5.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 5 (FBbt:00003029) and attached to some adult abdominal spiracle 5 (FBbt:00004817).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 5 (FBbt:00003029) and attached to some adult abdominal spiracle 5 (FBbt:00004817).
Temporary eclosion muscle of adult abdominal segment 5 that develops from abdominal 5 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 5 that develops from abdominal 5 dorsal acute muscle 1 of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 5 that develops from abdominal 5 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 5 that develops from abdominal 5 segment border muscle of the larva by a process of remodeling.
Abdominal ventral muscle group of adult abdominal segment A5. Formerly, erroneously named abdominal 6 ventral muscle 129. Segment numbering has now been corrected to be consistent with muscle number.
Abdominal ventral muscle group of adult abdominal segment A5.
Dorsal muscle group of adult abdominal segment A6.
Dorsal muscle group of adult abdominal segment A6.
Lateral tergosternal muscle of abdominal segment 6.
Lateral tergosternal muscle of abdominal segment 6.
Oblique dorsal muscle of abdominal segment 6.
Oblique dorsal muscle of abdominal segment 6.
Any occlusor muscle of adult abdominal spiracle (FBbt:00013334) that is part of some adult abdominal segment 6 (FBbt:00003030) and attached to some adult abdominal spiracle 6 (FBbt:00004818).
Any occlusor muscle of adult abdominal spiracle (FBbt:00059065) that is part of some adult abdominal segment 6 (FBbt:00003030) and attached to some adult abdominal spiracle 6 (FBbt:00004818).
Temporary eclosion muscle of adult abdominal segment 6 that develops from abdominal 6 segment border muscle of the larva by a process of remodeling.
Temporary eclosion muscle of adult abdominal segment 6 that develops from abdominal 6 segment border muscle of the larva by a process of remodeling.
Abdominal ventral muscle group of adult abdominal segment A6.
Abdominal ventral muscle group of adult abdominal segment A6.
Dorsal muscle group of adult female abdominal segment A7.
Dorsal muscle group of adult female abdominal segment A7.
Muscle of the adult female abdominal segment 7 that extends along the lateral abdominal sternite wall, anterior to lateral muscle 141.
Muscle of the adult female abdominal segment 7 that extends along the lateral abdominal sternite wall, anterior to lateral muscle 141.
Muscle of the adult female abdominal segment 7 that extends along the lateral abdominal sternite wall, posterior to lateral muscle 140.
Muscle of the adult female abdominal segment 7 that extends along the lateral abdominal sternite wall, posterior to lateral muscle 140.
Any female abdominal muscle (FBbt:00003507) that occlusor muscle of adult abdominal spiracle (FBbt:00013334) and is part of some adult abdominal segment 7 (FBbt:00003031) and attached to some adult abdominal spiracle 7 (FBbt:00004819).
Any female abdominal somatic muscle (FBbt:00059018) that occlusor muscle of adult abdominal spiracle (FBbt:00059065) and is part of some adult abdominal segment 7 (FBbt:00003031) and attached to some adult abdominal spiracle 7 (FBbt:00004819).
Muscle of the adult female abdominal segment 7 that extends from the anterior border of the segment dorsoposteriorly. It attaches anteriorly to the same region as the ventral muscle 142.
Muscle of the adult female abdominal segment 7 that extends from the anterior border of the segment dorsoposteriorly. It attaches anteriorly to the same region as the ventral muscle 142.
Abdominal ventral muscle group of adult female abdominal segment A7.
Abdominal ventral muscle group of adult female abdominal segment A7.
Muscle of the adult female abdominal segment 8 that extends posteriorly along the dorsal abdominal sclerite wall. It is the most dorsal of the abdominal 8 female dorsal muscles.
Muscle of the adult female abdominal segment 8 that extends posteriorly along the dorsal abdominal sclerite wall. It is the most dorsal of the abdominal 8 female dorsal muscles.
Muscle of the adult female abdominal segment 8 that extends posteriorly. It is ventral to the female dorsal muscle 147.
Muscle of the adult female abdominal segment 8 that extends posteriorly. It is ventral to the female dorsal muscle 147.
Muscle of the adult female abdominal segment 8 that extends posteriorly. It is dorsal to the female dorsal muscle 146.
Muscle of the adult female abdominal segment 8 that extends posteriorly. It is dorsal to the female dorsal muscle 146.
Muscle of the adult female abdominal segment 8 that extends dorsoventrally. It is posterior to the female dorsal muscle 147.
Muscle of the adult female abdominal segment 8 that extends dorsoventrally. It is posterior to the female dorsal muscle 147.
Muscle of the adult female abdominal segment 8 that extends along the lateral abdominal sternite wall from anterior to posterior.
Muscle of the adult female abdominal segment 8 that extends along the lateral abdominal sternite wall from anterior to posterior.
Muscle of the adult female abdominal segment 8 that extends dorsoposteriorly from the ventral region of the segment.
Muscle of the adult female abdominal segment 8 that extends dorsoposteriorly from the ventral region of the segment.
Abdominal ventral muscle group of adult female abdominal segment A8.
Abdominal ventral muscle group of adult female abdominal segment A8.
Fat body of the adult abdomen.
.
Muscle consisting of between fifteen and twenty-five bilaterally located longitudinal fibers in abdominal segments 2 to 6 of males, or segments 2 to 8 of females (Miller, 1950). It is involved in moving the abdominal segment tergite.
Muscle consisting of between fifteen and twenty-five bilaterally located longitudinal fibers in abdominal segments 2 to 6 of males, or segments 2 to 8 of females (Miller, 1950). It is involved in moving the abdominal segment tergite.
Lateral tergosternal muscle of abdominal segments 1 to 6. It is a large muscle that extends dorsoventrally. It attaches to the inner ventral region of the abdominal tergite and to the dorsal border of the abdominal sternite.
Lateral tergosternal muscle of abdominal segments 1 to 6. It is a large muscle that extends dorsoventrally. It attaches to the inner ventral region of the abdominal tergite and to the dorsal border of the abdominal sternite.
[adult abdominal nerve trunk; abdominal nerve trunk on adult VNS template, Court2018; computer graphic; adult VNS template - Court2018]
Muscle of abdominal segments 2 to 6, located obliquely from the anteroventral region to the dorsoposterior one, in the outer region. It consists of a single large fiber and it functions as a retractor of the tergites.
Muscle of abdominal segments 2 to 6, located obliquely from the anteroventral region to the dorsoposterior one, in the outer region. It consists of a single large fiber and it functions as a retractor of the tergites.
[computer graphic; adult second abdominal nerve; abdominal segment 2 nerve on adult VNS template, Court2018; adult VNS template - Court2018]
[adult third abdominal nerve; computer graphic; adult VNS template - Court2018; abdominal segment 3 nerve on adult VNS template, Court2018]
[adult fourth abdominal nerve; computer graphic; adult VNS template - Court2018; abdominal segment 4 nerve on adult VNS template, Court2018]
Any sternite (FBbt:00004477) that is part of some adult abdominal segment 11 (FBbt:00003035). It is considered that the sternite of abdominal segment 11, in both males and females, is membranous (Ferris, 1950).
Any sternite (FBbt:00004477) that is part of some adult abdominal segment 2 (FBbt:00003026).
Any sternite (FBbt:00004477) that is part of some adult abdominal segment 3 (FBbt:00003027).
Any sternite (FBbt:00004477) that is part of some adult abdominal segment 4 (FBbt:00003028).
Any sternite (FBbt:00004477) that is part of some adult abdominal segment 5 (FBbt:00003029).
Sternite of the 6th abdominal segment. In females this is a single, midline crossing sclerite. In males, it is a bilaterally sclerite - the two plates meet anteriorly at the ventral midline.
.
Microchaeta of a sternite of the abdominal segments.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 dorsal acute muscle. Wasser et al. (2007) suggest that during pupariation some of the muscles break apart into 2 fragments. For example in abdominal segment 3, one of the larval DA muscles splits to become a temporary eclosion muscle of segments 2 and 3.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 dorsal acute muscle.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 lateral longitudinal muscle.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 lateral longitudinal muscle.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 segment border muscle. It extends dorsoventrally, and is located in the intersegmental fold between two abdominal segments.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 segment border muscle. It extends dorsoventrally, and is located in the intersegmental fold between two abdominal segments.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 ventral longitudinal muscle.
Temporary eclosion muscle of the adult abdomen that develops from an A1-7 ventral longitudinal muscle.
Tergite of abdominal segment 1. Partially fused to tergite 2.
Tergite of abdominal segment 2. Partially fused to tergite 1.
Any tergite (FBbt:00004476) that is part of some adult abdominal segment 3 (FBbt:00003027).
Any tergite (FBbt:00004476) that is part of some adult abdominal segment 4 (FBbt:00003028).
Any tergite (FBbt:00004476) that is part of some adult abdominal segment 5 (FBbt:00003029).
Any tergite (FBbt:00004476) that is part of some adult abdominal segment 6 (FBbt:00003030).
Any tergite (FBbt:00004476) that is part of some adult abdominal segment 7 (FBbt:00003031). Exists only in females, it has lost its sclerotization in males. In the latter, the spiracle associated with this segment is located more anteriorly, close to tergite 6 (Ferris, 1950). May be some controversy on segment assignment.
Tergite of adult abdominal segment 8. It is sexually dimorphic.
Microchaeta found on the posterior margin of a tergite of the abdominal segments.
Bilateral, ventrally located muscle consisting of approximately six fibers, found underneath the abdominal sternite of abdominal segments 2-6 of males or 2-8 of females.
Bilateral, ventrally located muscle consisting of approximately six fibers, found underneath the abdominal sternite of abdominal segments 2-6 of males or 2-8 of females.
[confocal microscopy; antennal grooming brain interneuron 1; aBN1-spGAL4-1 adult brain - Hampel2015; JRC2018Unisex; adult brain template JFRC2]
Thermosensory neuron with its soma in the adult brain, anterior to the antennal lobe, that has no dendrites and expresses TrpA1 (Hamada et al., 2008; Shih and Chiang, 2011). It is activated by elevated temperature and is necessary for normal warmth-avoidance behavior (Hamada et al., 2008). It innervates the antennal lobe glomeruli VL2a and VL2p and the subesophageal zone, then projects obliquely towards the ipsilateral posterior superior lateral protocerebrum before branching to give extensive symmetrical arborizations in the superior medial protocerebrum in both hemispheres (Hamada et al., 2008; Shih and Chiang, 2011). It is serotonergic (Shih and Chiang, 2011). Neurotransmitter type was assessed by immunostaining with 5-HT (Shih and Chiang, 2011).
A small area of neuropil on the frontomedial edge of the medulla, close to the outgoing fibers running from the serpentine layer to the posterior optic commissure. It is the descendant of the larval optic neuropil (Sprecher et al., 2011).
Visual projection neuron that conveys information from the optic lobe to the ventral accessory calyx (Li et al., 2020).
[accessory medulla on adult brain template Ito2014; computer graphic]
[accessory medulla on adult brain template JFRC2; computer graphic]
[adult mesothoracic accessory nerve; accessory mesothoracic nerve on adult VNS template, Court2018; computer graphic; adult VNS template - Court2018]
[accessory metathoracic nerve on adult VNS template, Court2018; adult first abdominal nerve; computer graphic; adult VNS template - Court2018]
The ~5um thick accessory pharyngeal nerve of the adult brain (Miller, 1950) contains axons connecting with the lower, anterior half of the adult head capsule including sensory organs along the esophagus (Ito et al., 2014). It fuses with the pharyngeal nerve in at their exit point from the gnathal ganglion, probably from the mandibular neuromere (Ito et al., 2014), but penetrate at a lower level into the space between the anterior cibarial plate and the dilator muscles. From here, the nerve enters the labrum to connect with its muscles and sense organs.
Projection of the sensory fibers that make up the accessory pharyngeal nerve in the adult tritocerebrum. The accessory pharyngeal nerve coalesces with the pharyngeal nerve, and the projections of these two nerves are located ventral to the esophagus. Fibers have a predominantly ipsilateral arborization. Two levels of arborization can be distinguished: dorsal and ventral. Better recorded as connected_to than part_of tritocerebrum? VH.
[accessory prothoracic nerve on adult VNS template, Court2018; adult prothoracic accessory nerve; computer graphic; adult VNS template - Court2018]
Adult motor neuron that innervates an accessory tibial flexor (tibial reductor) muscle (Brierley et al., 2012).
Adult motor neuron that innervates the accessory trochanter levator muscle (Brierley et al., 2012). Neurons of this type are produced by multiple lineages (Brierley et al., 2012).
Microchaeta of the scutum of the adult dorsal mesothorax in the acrostichal region. They are located on either side of the midline and medially to the dorsocentral region. These bristles are arranged roughly in anterior/posterior rows, with a few rows present.
AD1g1_R, FBbt:00051561 [VFB CATMAID Adult Brain (FAFB); adult brain; adult lateral horn AD1g1 neuron; EM FAFB Taisz and Galili et al., 2022; AD1g1_R (FAFB:1316642); JRC2018Unisex; is part of; female organism; CC-BY-SA_4.0; transmission electron microscopy (TEM)]
Muscle that draws some body part back to position.
Muscle that draws some body part back to position.
[confocal microscopy; antennal grooming descending neuron 1; aDN1-spGAL4-1 adult brain - Hampel2015; JRC2018Unisex; adult brain template JFRC2]
[aDT-a clone of Cachero 2010; confocal microscopy; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; adult fruitless aDT-a lineage clone]
[confocal microscopy; male organism; is part of; aDT-a_M clone of Cachero 2010; JRC2018Unisex; adult brain; adult brain template JFRC2; adult fruitless aDT-a lineage clone]
[confocal microscopy; aDT-b clone of Cachero 2010; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; adult fruitless aDT-b (female) lineage clone]
[confocal microscopy; adult fruitless aDT-c lineage clone; is part of; aDT-c clone of Cachero 2010; JRC2018Unisex; adult brain; adult brain template JFRC2]
[confocal microscopy; male organism; adult fruitless aDT-c lineage clone; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; aDT-c_M clone of Cachero 2010]
[confocal microscopy; aDT-d clone of Cachero 2010; adult fruitless aDT-d (female) lineage clone; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2]
[confocal microscopy; male organism; aDT-d_M clone of Cachero 2010; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; adult fruitless aDT-d (male) lineage clone]
[confocal microscopy; is part of; JRC2018Unisex; adult fruitless aDT-e (female) lineage clone; adult brain; adult brain template JFRC2; aDT-e clone of Cachero 2010]
[confocal microscopy; male organism; aDT-e_M clone of Cachero 2010; adult brain template JFRC2; is part of; JRC2018Unisex; adult brain; adult fruitless aDT-e (male) lineage clone]
[aDT-f clone of Cachero 2010; confocal microscopy; adult fruitless aDT-f lineage clone; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2]
[confocal microscopy; adult fruitless aDT-f lineage clone; male organism; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; aDT-f_M clone of Cachero 2010]
[confocal microscopy; adult fruitless aDT-g lineage clone; aDT-g clone of Cachero 2010; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2]
[confocal microscopy; male organism; adult fruitless aDT-g lineage clone; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; aDT-g_M clone of Cachero 2010]
[confocal microscopy; adult fruitless aDT-h lineage clone; JRC2018Unisex; is part of; aDT-h clone of Cachero 2010; adult brain; adult brain template JFRC2]
[confocal microscopy; male organism; adult fruitless aDT-h lineage clone; is part of; JRC2018Unisex; adult brain; adult brain template JFRC2; aDT-h_M clone of Cachero 2010]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; adult fruitless aDT4 neuron; aDT4 (FlyEM-HB:1912436017); neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain]
tracing status-Roughly traced, cropped-False [focussed ion beam scanning electron microscopy (FIB-SEM); JRC_FlyEM_Hemibrain; adult fruitless aDT4 neuron; aDT4_R (FlyEM-HB:789330613); neuronbridge; is part of; female organism; Neuprint web interface - hemibrain:v1.1; JRC2018Unisex; adult brain]
Adult heart CCAP neuron with its soma in an abdominal 1-5 segment (Dulcis and Levine, 2003). Its soma is located near the row of spiracles and its axon follows a transverse nerve to reach the heart (Dulcis and Levine, 2003). There is one of these on each side in each of abdominal segments 1-5 (Dulcis and Levine, 2003).
Adult heart CCAP neuron that has its soma in abdominal segment 6 (Dulcis and Levine, 2003). It innervates the terminal chamber of the heart (Dulcis and Levine, 2003). There are four of these cells per organism, which have large somas and are found together as a medial cluster (Dulcis and Levine, 2003).
Local (intrinsic) neuron of the adult antennal lobe that innervates all but a few glomeruli (Chou et al., 2010; Coates et al., 2020).
Abdomen of the adult.
Any adult abdominal anterior ventral multidendritic neuron vdaa (FBbt:00048432) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal dorsal multidendritic neuron ddaC (FBbt:00048431) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal dorsal multidendritic neuron ddaD (FBbt:00048430) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal dorsal multidendritic neuron ddaE (FBbt:00048433) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal lateral multidendritic neuron ldaA (FBbt:00048434) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal lateral multidendritic neuron ldaA-like (FBbt:00048435) that has soma location some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal anterior ventral multidendritic neuron vdaa (FBbt:00048432) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal dorsal multidendritic neuron ddaC (FBbt:00048431) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal dorsal multidendritic neuron ddaD (FBbt:00048430) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal dorsal multidendritic neuron ddaE (FBbt:00048433) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal lateral multidendritic neuron ldaA (FBbt:00048434) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal lateral multidendritic neuron ldaA-like (FBbt:00048435) that has soma location some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal anterior ventral multidendritic neuron vdaa (FBbt:00048432) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal dorsal multidendritic neuron ddaC (FBbt:00048431) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal dorsal multidendritic neuron ddaD (FBbt:00048430) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal dorsal multidendritic neuron ddaE (FBbt:00048433) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal lateral multidendritic neuron ldaA (FBbt:00048434) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal lateral multidendritic neuron ldaA-like (FBbt:00048435) that has soma location some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal anterior ventral multidendritic neuron vdaa (FBbt:00048432) that has soma location some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal dorsal multidendritic neuron ddaC (FBbt:00048431) that has soma location some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal dorsal multidendritic neuron ddaD (FBbt:00048430) that has soma location some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal lateral multidendritic neuron ldaA (FBbt:00048434) that has soma location some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal lateral multidendritic neuron ldaA-like (FBbt:00048435) that has soma location some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal anterior ventral multidendritic neuron vdaa (FBbt:00048432) that has soma location some adult abdominal segment 6 (FBbt:00003030).
Any adult abdominal dorsal multidendritic neuron ddaC (FBbt:00048431) that has soma location some adult abdominal segment 6 (FBbt:00003030).
Any adult abdominal dorsal multidendritic neuron ddaD (FBbt:00048430) that has soma location some adult abdominal segment 6 (FBbt:00003030).
Any adult abdominal lateral multidendritic neuron ldaA (FBbt:00048434) that has soma location some adult abdominal segment 6 (FBbt:00003030).
Any adult abdominal lateral multidendritic neuron ldaA-like (FBbt:00048435) that has soma location some adult abdominal segment 6 (FBbt:00003030).
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the ventral body wall (pleural membrane). It is remodeled from the larval vdaa neuron of the corresponding segment, being reshaped from a radial pattern to a lattice pattern (Shimono et al., 2009).
Dorsal tracheal branch of the adult abdominal segments that connects the left and right dorsal trunks. There are six abdominal dorsal branches, in segments 1 to 6.
First abdominal dorsal branch of the adult trachea. It is the third most anterior dorsal branch.
Second abdominal dorsal branch of the adult trachea. It is the fourth most anterior dorsal branch.
Third abdominal dorsal branch of the adult trachea. It is the fifth most anterior dorsal branch.
Fourth abdominal dorsal branch of the adult trachea. It is the sixth most anterior dorsal branch.
Fifth abdominal dorsal branch of the adult trachea. It is the seventh most anterior dorsal branch.
Sixth abdominal dorsal branch of the adult trachea. It is the eighth most anterior dorsal branch.
Only 6 abdominal branches are described in Whitten, 1980 (Whitten, 1980, Ashburner, Wright, 1978-1980 d: 499–540), suggesting this branch does not exist. (mc150128) (FBC:MMC). [adult abdominal dorsal branch 9]
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the dorsal body wall (tergite). It is remodeled from the larval ddaC neuron of the corresponding segment (Shimono et al., 2009).
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the dorsal body wall (tergite). It is remodeled from the larval ddaD neuron of the corresponding segment (Shimono et al., 2009).
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the dorsal body wall (tergite). It is remodeled from the larval ddaE neuron of the corresponding segment (Williams and Truman, 2004). It has many more terminals than its larval equivalent (Shimono et al., 2009). It undergoes programmed cell death within one week after eclosion (Shimono et al., 2009).
Any fat cell (FBbt:00046052) that is part of some adult abdominal fat mass (FBbt:00003213).
Adult neuron that expresses Leucokinin (FBgn0028418) whose cell body is located dorsally in the abdominal ganglion, with their cell bodies and neurites resembling a ladder-like appearance. From each neuron emerge two axons: one fasciculates with the abdominal nerves and the other branches toward the anterior and posterior ABLK. The more anterior ABLK neurons are connected to the leucokinin SELK neuron of the subesophageal ganglion in the dorsal-medial tract (de Haro et al., 2010).
Adult histaminergic neuron with its cell body in the abdominal neuromere (Nassel et al., 1990). There are 12 of these cells per organism and their somas are located ventrally (Nassel et al., 1990).
Myoinhibitory peptide (Mip)-expressing neuron of the adult that has a relatively large soma located in a ventral and medial position in the posterior abdominal neuromere (Jang et al., 2017). There is one of these cells per hemisphere (Jang et al., 2017). Not labelled by Mip antibody (Jang et al., 2017).
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the ventral body wall (pleural membrane). It is remodeled from the larval ldaA neuron of the corresponding segment (Shimono et al., 2009).
Mechanosensory multidendritic neuron that innervates the adult abdomen, extending dendrites under the ventral body wall (pleural membrane). It is highly similar to the adult ldaA neuron and their cell bodies are attached (Shimono et al., 2009).
Mechanosensory chaeta found on the surface of the adult abdomen. They are found on the dorsal surface and close to the ventral midline (Tsubouchi et al., 2017). Any mechanosensory chaeta of the terminalia are also covered by this term [FBC:CP].
Mechanosensory neuron that has a dendrite in a mechanosensory chaeta of the adult abdomen. Its presynaptic terminals are found in the abdominal neuromere, dorsal to those of the abdominal multidendritic neurons (Tsubouchi et al., 2017).
Mechanosensory multidendritic neuron that innervates the adult abdomen. These neurons extend dendrites under the dorsal and lateral body walls. Three innervate the dorsal region and two innervate the ventral region. Their axons project to a ventral region in the abdominal neuromere.
Nerve of the adult abdomen.
Paired nerve that branches from the abdominal nerve trunk and projects to the junction of the ovaries and the lateral oviduct where it branches repeatedly. Some branches radiate anteriorly across the peritoneal sheath, on which they terminate, mainly in the anterior two thirds of the ovary. Varicosities occur along these branches as well as at their ends. These branches do not penetrate the peritoneal sheath. Other branches innervate the lateral oviduct and the upper portion of the common oviduct. Two types of branches innervate the common oviduct - wandering fibers similar to those on the peritoneal sheath, and branches running circularly, parallel to the underlying myofibers.
Paired nerve that branches from the abdominal nerve trunk and projects to the uterus where it innervated both the extrinsic muscles and the circular muscle fibers. One branch projects to the inner layers of the uterus.
A fused terminal nerve that projects posteriorly along the midline from the posterior of the abdominal neuropil (Court et al., 2020).
Posteriormost of the four major neuropils of the ventral nerve cord, composed of the fused abdominal neuromeres A1 through A8 (Court et al., 2020).
[adult abdominal neuromere on adult VNC, JRC2018VU; JRC2018UnisexVNC; is part of; adult ventral nerve cord; computer graphic]
[computer graphic; adult abdominal neuromere on adult VNS template, Court2018; adult VNS template - Court2018]
Pericardial cell of the adult abdomen. These are serially arranges in a row of 20-25 on each side of the hear from the first to the 6th segment.
Any abdominal segment (FBbt:00000021) that is part of some adult abdomen (FBbt:00003023).
Any abdominal segment 1 (FBbt:00000022) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 1 (FBbt:00003025).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 1 (FBbt:00003025).
Any abdominal segment 10 (FBbt:00000031) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 10 (FBbt:00003034).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 10 (FBbt:00003034).
Any abdominal segment 11 (FBbt:00000032) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 11 (FBbt:00003035).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 11 (FBbt:00003035).
Any abdominal segment 2 (FBbt:00000023) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 2 (FBbt:00003026).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 2 (FBbt:00003026).
Any abdominal segment 3 (FBbt:00000024) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 3 (FBbt:00003027).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 3 (FBbt:00003027).
Any abdominal segment 4 (FBbt:00000025) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 4 (FBbt:00003028).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 4 (FBbt:00003028).
Any abdominal segment 5 (FBbt:00000026) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 5 (FBbt:00003029).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 5 (FBbt:00003029).
Any abdominal segment 6 (FBbt:00000027) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 6 (FBbt:00003030).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 6 (FBbt:00003030).
Any abdominal segment 7 (FBbt:00000028) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 7 (FBbt:00003031).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 7 (FBbt:00003031).
Any abdominal segment 8 (FBbt:00000029) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 8 (FBbt:00003032).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 8 (FBbt:00003032).
Any abdominal segment 9 (FBbt:00000030) that is part of some adult abdomen (FBbt:00003023).
Any adult abdominal segment anterior compartment (FBbt:00111583) that is part of some adult abdominal segment 9 (FBbt:00003033).
Any adult abdominal segment posterior compartment (FBbt:00111595) that is part of some adult abdominal segment 9 (FBbt:00003033).
Any adult segment anterior compartment (FBbt:00111573) that is part of some adult abdominal segment (FBbt:00003024).
Nerve that extends posteriorly from the adult abdominal ganglion. There is one that extends from each abdominal segment 1 to 5.
Any adult segment posterior compartment (FBbt:00111574) that is part of some adult abdominal segment (FBbt:00003024).
Sensillum of the adult abdomen.
Myoinhibitory peptide (Mip)-expressing neuron of the adult that has a relatively small soma located in a medial position, posteriormost of the Mip cells of the abdominal neuromere (Jang et al., 2017). There are one or two of these cells per hemisphere (Jang et al., 2017). Not labelled by Mip antibody (Jang et al., 2017).
Myoinhibitory peptide (Mip)-expressing neuron of the adult that has a relatively small soma located in a ventral and medial position in the posterior abdominal neuromere (Jang et al., 2017). There are one or two of these cells per hemisphere (Jang et al., 2017). Not labelled by Mip antibody (Jang et al., 2017).
A spiracle of the adult abdomen. There are 7 pairs of these, in segments A1-7, in the anterior region of the pleural membrane. Each has a rigid circular rim and the opening leads to a tubular atrium lined by inward projecting circular lamellae. Where the atrium joins the trachea, the passage is constricted by a deep fold in the anterior wall which can be closed by the action of an associated spiracular occlusor muscle (FBbt:00013334).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 1 (FBbt:00003025) and is connected to some adult abdominal spiracular branch 3 (FBbt:00003075).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 2 (FBbt:00003026) and is connected to some adult abdominal spiracular branch 4 (FBbt:00003076).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 3 (FBbt:00003027) and is connected to some adult abdominal spiracular branch 5 (FBbt:00003077).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 4 (FBbt:00003028) and is connected to some adult abdominal spiracular branch 6 (FBbt:00003078).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 5 (FBbt:00003029) and is connected to some adult abdominal spiracular branch 7 (FBbt:00003079).
Any adult spiracle (FBbt:00003120) that is part of some adult abdominal segment 6 (FBbt:00003030) and is connected to some adult abdominal spiracular branch 8 (FBbt:00003080).
Most posterior of the adult abdominal spiracles. It is located lateral to the posterior of tergite 6.
Tracheal branch of an abdominal segment (tracheal metameres 3-10) that connects the lateral trunk to the spiracle.
Tracheal branch of the first abdominal segment (tracheal metamere 3) that connects the lateral trunk to the spiracle.
Tracheal branch of the second abdominal segment (tracheal metamere 4) that connects the lateral trunk to the spiracle.
Tracheal branch of the third abdominal segment (tracheal metamere 5) that connects the lateral trunk to the spiracle.
Tracheal branch of the fourth abdominal segment (tracheal metamere 6) that connects the lateral trunk to the spiracle.
Tracheal branch of the fifth abdominal segment (tracheal metamere 7) that connects the lateral trunk to the spiracle.
Tracheal branch of the sixth abdominal segment (tracheal metamere 8) that connects the lateral trunk to the spiracle.
Tracheal branch of the seventh abdominal segment (tracheal metamere 10) that connects the lateral trunk to the spiracle.
Doublesex and myoinhibitory peptide (Mip)-expressing local interneuron of the adult female that has its soma in a relatively ventral and lateral location in the anterior abdominal neuromere (Jang et al., 2017). There are two of these cells per hemisphere in the female and there is no male equivalent (Jang et al., 2017). It extensively innervates the abdominal ganglion, where it has input and output terminals, it also sends an axon along the midline to the metathoracic neuromere, where it has presynaptic terminals (Jang et al., 2017). Its activity is required for normal mating receptivity in virgin flies (Jang et al., 2017).
Myoinhibitory peptide (Mip)-expressing neuron of the adult female that has its soma in a relatively ventral and medial location in the anterior abdominal neuromere (Jang et al., 2017). There are one or two of these cells per hemisphere in the female and there is no male equivalent (Jang et al., 2017). It has higher activity in virgin than mated females and its activity promotes mating receptivity (Jang et al., 2017). Not labelled by Mip antibody (Jang et al., 2017).
Adult VUM neuron with its soma in the anterior abdominal neuromere and dendrites that arborize in the haltere neuropil (Ehrhardt et al., 2023). It innervates the haltere dorsal ventral muscle (Ehrhardt et al., 2023).
[adult accessory mesothoracic neuropil; adult accessory mesothoracic neuromere on adult VNC, JRC2018VU; JRC2018UnisexVNC; is part of; adult ventral nerve cord; computer graphic]
[adult accessory mesothoracic neuromere on adult VNS template, Court2018; adult accessory mesothoracic neuropil; computer graphic; adult VNS template - Court2018]
Region of dense neuropil located at the interface between the mesothoracic neuromere and the prothoracic neuromere, ventral to the tectulum (Court et al., 2020). It mostly contains sensory afferents from the wing and notum that enter the central nervous system via the anterior dorsal mesothoracic nerve (Power, 1948; Court et al., 2020).
Adipose system of the adult.
An endocrine cell that secretes the glucagon-like Adipokinetic hormone (Akh). There are approximately 23 of these cells, all found in the adult corpus cardiacum. They have projections to the crop (Lee and Park, 2004; Hadjieconomou et al., 2020).
A clone of neurons in the adult brain, all of which develop from neuroblast ALad1 (FBbt:00067346).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALad1 (FBbt:00067346).
Bilateral adult heart muscle that is involved in modulation of the flow of hemolymph into the cardiac tube, and support of the dorsal vessel during locomotion.
Anterior most of the alary muscles, connecting the adult heart, close to ostia 1, to the front edge of the third abdominal tergite.
Second anterior-most of the alary muscles, connecting the adult heart, close to ostia 2, to the front edge of the fourth abdominal tergite.
Third anterior-most of the alary muscles, connecting the adult heart, close to ostia 3, to the front edge of the fifth abdominal tergite.
Posterior-most of the alary muscles, connecting the adult heart, close to ostia 4, to the front edge of the fifth abdominal tergite.
The entire adult anatomical structure through which food and its digestion products are ingested, digested and excreted. At its anterior and posterior ends this includes structures that are not foregut or hindgut.
A clone of neurons in the adult brain, all of which develop from neuroblast ALl1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALl1 (FBbt:00067347).
A clone of neurons in the adult brain, all of which develop from neuroblast ALlv1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALlv1 (FBbt:00050038).
Mushroom body neuron of the adult that bifurcates at the anterior end of the pedunculus, projecting into the mushroom body alpha’-lobe and beta’-lobe (Lee et al., 1999; Tanaka et al., 2008). It develops from a larval alpha’/beta’ Kenyon cell with little alteration during metamorphosis (Lee et al., 1999). In the pedunculus, the alpha’ and beta’ neurons occupy an intermediate stratum between the gamma axons at the periphery and the alpha/beta neurons at the core (Tanaka et al., 2008; Li et al., 2020). Most arborize in the main calyx, with a subset arborizing in the lateral accessory calyx (Marin et al., 2020). There is a total of around 340 of these cells per hemisphere (Li et al., 2020).
A clone of neurons in the adult brain, all of which develop from neuroblast ALv1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALv1 (FBbt:00067348).
A clone of neurons in the adult brain, all of which develop from neuroblast ALv2.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALv2 (FBbt:00050035).
Adult neuron that expresses the A isoform of Orcokinin and has its soma in the lateral brain, near the accessory medulla (Chen et al., 2015). There are four of these cells per hemisphere (Chen et al., 2015). Distinct from LNv cells (Chen et al., 2015).
Any aminergic neuron (FBbt:00007368) that is part of some adult nervous system (FBbt:00003559).
Adult lateral horn input neuron that has its dendrites predominantly within the antennal mechanosensory and motor center (Frechter et al., 2019).
Adult projection neuron with its soma in the anterior subesophageal zone (Sterne et al., 2021). It has dendritic arborization in the cantle, saddle, flange and gnathal ganglion and axonal arborization in the inferior clamp, superior clamp, superior medial protocerebrum, superior lateral protocerebrum and gorget (Sterne et al., 2021). It is bilateral, with similar innervation in each hemisphere (Sterne et al., 2021).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. It has postsynapses in the ipsilateral anterior ventrolateral protocerebrum. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. Its predicted neurotransmitter is gaba. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. It has postsynapses in the ipsilateral posterior lateral protocerebrum, the ipsilateral superior medial protocerebrum, the ipsilateral inferior clamp, the ipsilateral crepine, the ipsilateral superior posterior slope, the ipsilateral superior intermediate protocerebrum, the ipsilateral superior clamp, the ipsilateral superior lateral protocerebrum, the ipsilateral inferior bridge and the ipsilateral antler. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. It has postsynapses in the ipsilateral flange and the ipsilateral superior medial protocerebrum. Its predicted neurotransmitter is glutamate. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. It has postsynapses in the ipsilateral superior intermediate protocerebrum, the ipsilateral superior lateral protocerebrum, the ipsilateral flange, the ipsilateral superior clamp, the contralateral superior intermediate protocerebrum and the ipsilateral superior medial protocerebrum. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult ascending neuron with its soma in the ventral nerve cord or periphery. It has postsynapses in the ipsilateral superior lateral protocerebrum, the ipsilateral lateral horn and the ipsilateral superior intermediate protocerebrum. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Sclerotized 10th tergite plate flanking the adult anus (Ferris, 1950).
Bristle of the antenna. There are approximately 20 of these on each side, found on the first and second antennal segments (Eichler et al., 2023).
The adult antennal lobe is a bilaterally paired synaptic neuropil domain of the deutocerebrum lying in front of the protocerebral synaptic neuropil domains. It is divided into approximately 50 glomeruli and is clearly separated from adjacent neuropil domains by an extensive glial sheath. The two antennal lobes are connected by the antennal commissure and receive olfactory receptor neuron axons from the antennal nerve and subesophageal tract. It is also connected to the antennal lobe tracts and the broad root.
Adult astrocyte-like glial cell that projects into the antennal lobe (Kremer et al., 2017). Each cell can invade multiple glomeruli and there is no difference in glial extension density between different glomeruli (Kremer et al., 2017). Cells might additionally branch into other neuropil domains.
Glial cell that is found in the cell body rind of the adult antennal lobe (Kremer et al., 2017). These cells enclose the cell bodies of local and projection neurons of the antennal lobe (Kremer et al., 2017).
Commissure that connects the two antennal lobes at their postero-dorsal corners (Stocker et al., 1990). There are two of these, separated by the lateral accessory lobe commissure, and they extend in front of the ellipsoid body (Ito et al., 2014).
Any adult descending neuron (FBbt:00047511) that has synaptic IO in region some adult antennal lobe (FBbt:00007401).
Ensheathing glial cell that forms part of the glial sheath of the antennal lobe (Kremer et al., 2017). These cells form a nearly contiguous sheet at the surface of the antennal lobe, with small holes that may be neuronal entry points (Kremer et al., 2017). They send extensions between glomeruli, following neuronal processes (Kremer et al., 2017).
Glomerulus of the adult antennal lobe, defined by the output terminals of specific sets of sensory neurons (Bates et al., 2020). Many former ‘compartments’ now modeled as glomeruli in their own right following Bates et al. (2020) EM paper term usage.
Type B (type 2) local interneuron of the adult antennal lobe that has a full arborization pattern in the antennal lobe (Scheffer et al., 2020).
Type B (type 2) local interneuron of the adult antennal lobe that has a patchy arborization pattern in the antennal lobe (Scheffer et al., 2020).
Type B (type 2) local interneuron of the adult antennal lobe that has a regional arborization pattern in the antennal lobe (Scheffer et al., 2020).
Type B (type 2) local interneuron of the adult antennal lobe that has a star-like arborization pattern in the antennal lobe (Scheffer et al., 2020).
Type B (type 2) local interneuron of the adult antennal lobe that has a tortuous arborization pattern in the antennal lobe (Scheffer et al., 2020).
Adult antennal lobe local neuron that belongs to the ventral (Notch ON) hemilineage of the lateral antennal lobe neuroblast (ALl1) (Lin et al., 2012; Bates et al., 2020). Lin et al. (2012) map PNs to Notch OFF hemilineage; classical lPNs belong to dorsal (l) hemilineage according to Bates et al. (2020) - FBrf0246460, so inferring that dorsal (l) hemilineage is Notch OFF, ventral (l2) is ON [FBC:CP].
Adult antennal lobe local neuron that belongs to the dorsal (Notch OFF) hemilineage of the lateral antennal lobe neuroblast (ALl1) (Lin et al., 2012; Bates et al., 2020). Lin et al. (2012) map PNs to Notch OFF hemilineage; classical lPNs belong to dorsal (l) hemilineage according to Bates et al. (2020) - FBrf0246460, so inferring that dorsal (l) hemilineage is Notch OFF, ventral (l2) is ON [FBC:CP].
Adult local neuron of the antennal lobe belonging to group 1 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 10 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 11 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 12A (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 12B (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 13 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 14 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 15 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 16A (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 16B (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 17 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 18 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 19 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 20 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 21 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 22 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 23 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch ON hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 24 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 25 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 26 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 27 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 28 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 29 (Scheffer et al., 2020). It develops from neuroblast ALv1 (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 30 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 31 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 32 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 33 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34A (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34B (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34C (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34D (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34E (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 34F (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 35 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 36 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 37 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 38 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 39A (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 39B (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 3A (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 3B (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 40 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 41 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 42 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 43 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 44 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 45 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 46 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 47 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 48 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 49 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 50 (Scheffer et al., 2020). It develops from neuroblast ALv2 (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020). Lineage for v2, which was not mentioned in Bates et al. (2020) - FBrf0246460, is based on mappings of other v2LNs to known ALv2 types in hemibrain 1.2 notes.
Adult local neuron of the antennal lobe belonging to group 7 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 8 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult local neuron of the antennal lobe belonging to group 9 (Scheffer et al., 2020). It develops from neuroblast ALl1 (Notch OFF hemilineage) (Bates et al., 2020; Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
[computer graphic; adult antennal lobe on adult brain template Ito2014]
[adult antennal lobe on adult brain template JFRC2; computer graphic]
Interneuron whose dendrite innervates the antennal lobe and whose axon innervates some higher brain center - generally the mushroom body calyx and/or the lateral horn.
An adult antennal lobe projection neuron that is derived from neuroblast ALad1 (FBbt:00067346). All of these neurons have axons that fasciculate with the medial antennal lobe tract (mALT) and innervate the lateral horn. Generalizations about fasciculation are safe here. But 4 PNs have still not been analyzed: DA4m, DC4, VP2, and VL1. See Yu et al., 2010 for details.
Adult uniglomerular antennal lobe projection neuron from the ad (ALad1) neuroblast lineage whose dendrites mainly innervate antennal lobe glomerulus D. This neuron is derived from the fourth larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). See FlyBase:FBrf0211729 for image.
Adult uniglomerular antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus DA1.
Adult uniglomerular antennal lobe projection neuron from the dorsal hemilineage of the lateral neuroblast (ALl1) whose dendrites mainly innervate antennal lobe glomerulus DA1 (Bates et al., 2020). The axons of these neurons innervate a small area at the anterior edge of the lateral horn. There are around eight of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ventral neuroblast (ALv1) lineage whose dendrites mainly innervate antennal lobe glomerulus DA1 (Bates et al., 2020). It projects via the mediolateral antennal lobe tract to reach the lateral horn directly. This neuron is GABAergic and there is around one per hemisphere (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the lateral antennal lobe neuroblast (ALl1) dorsal hemilineage whose dendrites mainly innervate antennal lobe glomerulus DA2 (Bates et al., 2020). The axons of these neurons innervate the posteriomedial region of the lateral horn. There are around 5 of these per hemisphere, they project through the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Antennal lobe projection neuron whose dendrites innervate the antennal lobe glomeruli DA2, VA2 and VA3 only (Stocker et al., 1990). Stocker et al. (1990) draw this with its soma adjacent to the antennal lobe, so unlikely to correspond to DA2++ ilPN from Marin et al. (2020) - FBrf0246456.
Adult panglomerular antennal lobe projection neuron with greatest innervation of the DA2 glomerulus (Bates et al., 2020; Marin et al., 2020). It follows the transverse antennal lobe t8ALT tract (Marin et al., 2020; Scheffer et al., 2020). There is one of these per hemisphere, with its cell body in the lateral subesophageal zone (Bates et al., 2020; Marin et al., 2020). One cell in hemibrain 1.2 data.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage (embryonic born) whose dendrites mainly innervate antennal lobe glomerulus DA3. Neurons of this class are born during the 2nd larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus DA4l. This neuron is born from the fifth division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Unilateral, uniglomerular antennal lobe (AL) projection neuron whose dendrites mainly innervate glomerulus DA4m (Tanaka et al., 2012). It develops from the ALad1 neuroblast (Bates et al., 2020) and has its soma in the ventral part of the cell body rind around the AL (Tanaka et al., 2012). It bifurcates in the AL hub, with one branch forming glomerular arborizations in DA4m, with some additional neurites around the glomerulus, and one branch joining the medial antennal lobe tract (Tanaka et al., 2012). Collateral branches innervate the central area of the mushroom body calyx and the ventral area of the lateral horn (Tanaka et al., 2012). One of the lateral horn branches turns ventrally and projects via the lateral section of the posterior lateral fascicle to reach the anterior posterior lateral protocerebrum (Tanaka et al., 2012). There is one of these per hemisphere and it is cholinergic (Bates et al., 2020). This was the only example of a medial antennal lobe projection neuron 3 found by Tanaka et al., 2012.
Adult uniglomerular antennal lobe projection neuron from the neuroblast ALad1 (FBbt:00067346) lineage whose dendrites mainly innervate antennal lobe glomerulus DC1. This neuron is born from the 11th division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). Its boutons in the mushroom body calyx are widely distributed, mostly within the dorsal half (Li et al., 2020). It is the only uniglomerular projection neuron to receive input in DC1 (Li et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage whose dendrites mainly innervate antennal lobe glomerulus DC2. This neuron is derived from the third larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage whose dendrites mainly innervate antennal lobe glomerulus DC3. Neurons of this class are derived from the sixth larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). The axons of these neurons innervate a small area at the anterior edge of the lateral horn, in a similar region to VL2a and VA1lm PNs. There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage whose dendrites mainly innervate antennal lobe glomerulus DC4 (Ai et al., 2013; Bates et al., 2020). It follows the medial antennal lobe tract to innervate the mushroom body and lateral horn (Ai et al., 2013). Its axon bifurcates to form stereotypical dorsal and ventral branches in the anterior medial region of the lateral horn (Ai et al., 2013). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). Ai et al. (2013) found 2-3 of these cells, but only one in Bates et al. (2020).
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DC4 (Bates et al., 2020). There are two of these per hemisphere, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 2 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage whose dendrites mainly innervate antennal lobe glomerulus DL1. Neurons of this class are derived from the first larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). The axons of these neurons innervate a small area at the ventroposterior edge of the lateral horn. There are around two of these per hemisphere and they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus DL2d. Neurons of this class are derived from the 23rd larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around five of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DL2d (Bates et al., 2020). There are two of these per hemisphere, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 2 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage whose dendrites mainly innervate antennal lobe glomerulus DL2v. Neurons of this class are derived from the 22nd larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around four of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DL2v (Bates et al., 2020). There is one of these per hemisphere, it fasciculates with the mediolateral antennal lobe tract and it is GABAergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the lateral neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus DL3 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around five of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron of the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus DL4. Neurons of this class are born during the 20th and final division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). It innervates the posteriomedial region of the lateral horn and the mushroom body calyx. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
[transmission electron microscopy (TEM); focussed ion beam scanning electron microscopy (FIB-SEM); adult olfactory projection neuron; antennal lobe glomerulus DL5; adult uniglomerular antennal lobe projection neuron; Uniglomerular mALT DL5 lvPN#R1 (FAFB:57216); JRC2018Unisex; JRC_FlyEM_Hemibrain; Uniglomerular mALT DL5 adPN#L1 (FAFB:1992); receives synaptic input throughout; adult antennal lobe projection neuron DL5; Uniglomerular mALT DL5 adPN#R1 (FAFB:39668); DL5_adPN_R (FlyEM-HB:693483018)]
Adult uniglomerular antennal lobe projection neuron of the ad neuroblast (ALad1) with dendrites that mainly innervate antennal lobe glomerulus DL5. This neuron is born from the 16th division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) lineage with dendrites that mainly innervate antennal lobe glomerulus DL5 (Bates et al., 2020). There is one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus DL6. This neuron is born from the ninth division of neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the lateral neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus DM1 (Bates et al., 2020). The axons of these neurons innervate a small area at the dorsoposterior edge of the lateral horn. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). Its boutons in the mushroom body calyx are widely distributed, mostly within the ventral half (Li et al., 2020). It is the only uniglomerular projection neuron to receive input in DM1 (Li et al., 2020).
Antennal lobe projection neuron whose dendrites innervate the antennal lobe glomeruli DM1, VP2 and VP3 only and projects to the mushroom body calyx (Stocker et al., 1990).
Adult uniglomerular antennal lobe projection neuron from the lateral neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus DM2 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus DM3. Neurons of this class are born during the 18th division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus DM4 (FBbt:00003976).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus DM4. This neuron is born from the 15th division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DM4 (Bates et al., 2020). There are two of these per hemisphere, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 2 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ALl1 dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus DM5 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus DM6. Neurons of this class are derived from the 12th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron with dendrites that mainly innervate antennal lobe glomerulus DP1.
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus DP1l (FBbt:00007098).
Adult uniglomerular antennal lobe projection neuron from the ALad1 neuroblast (FBbt:00067346) lineage with dendrites that mainly innervate antennal lobe glomerulus DP1l. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). ‘DP1l adPN’ is not listed in Yu et al., 2010, which claims to account for all adPNs. Probably equivalent to one of those identified by Yu et al., but with disagreement over target glomerulus name.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DP1l (Bates et al., 2020). There is one of these per hemisphere, it fasciculates with the mediolateral antennal lobe tract and it is GABAergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus DP1m. This is the first neuron born from the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). The axonal terminals in the lateral horn branch extensively and occupy large regions of this neuropil (Ai et al., 2013). There is one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Ai et al., 2013; Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus DP1m (Bates et al., 2020). There are two of these per antennal lobe, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020).
Adult antennal lobe projection neuron that belongs to the ventral (Notch ON) hemilineage of the lateral antennal lobe neuroblast (ALl1) (Lin et al., 2012; Bates et al., 2020). Lin et al. (2012) map PNs to Notch OFF hemilineage and LNs to Notch ON; classical lPNs belong to dorsal hemilineage according to Bates et al. (2020), so inferring that dorsal hemilineage is Notch OFF, ventral is ON [FBC:CP].
Adult antennal lobe projection neuron that belongs to the dorsal (Notch OFF) hemilineage of the lateral antennal lobe neuroblast (ALl1) (Lin et al., 2012; Bates et al., 2020). Its cell body is located in the lateral part of the cell body rind of the antennal lobe. Lin et al. (2012) map PNs to Notch OFF hemilineage and LNs to Notch ON; classical lPNs belong to dorsal hemilineage according to Bates et al. (2020), so inferring that dorsal hemilineage is Notch OFF, ventral is ON [FBC:CP].
Adult antennal lobe projection neuron that develops from neuroblast ALlv1 (BAlp4) (Bates et al., 2020). The majority of secondary neurons of this lineage are cholinergic and fasciculate with the medial antennal lobe tract (Bates et al., 2020).
Adult antennal lobe projection neuron that has its soma in the subesophageal zone (Bates et al., 2020; Marin et al., 2020). There are a few distinct clusters of these cells and some cells bifurcate in the subesophageal zone (SEZ) to have bilaterally symmetrical projection patterns (Bates et al., 2020; Marin et al., 2020).
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus VA1d (FBbt:00007101).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA1d. Neurons of this class are derived from the seventh larval division of the ALad1 neuroblast (FBbt:00067346) and their axons innervate the anterior/ventral region of the lateral horn (Marin et al., 2002, Tanaka et al., 2004). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus VA1d (Bates et al., 2020). There is one of these per hemisphere, it fasciculates with the mediolateral antennal lobe tract and it is GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 1 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron with dendrites that mainly innervate antennal lobe glomerulus VA1 ventral compartment.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA1 ventral compartment. Neurons of this class are derived from the 13th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). Their axons innervate the ventral half of the lateral horn (Marin et al., 2002). There are around four of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ventral neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA1 ventral compartment. There are around two of these per hemisphere, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 1 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA2. This neuron is born from the 14th division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729. Bates et al. (2020) supplement lists this as an AL-mlPN1, but this is probably a mistake as it is inconsistent with lineage information.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA3. Neurons of this class derive from the fifth larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALl1 dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VA4 (Bates et al., 2020). The axons of these neurons innervate a small area at the dorsoposterior edge of the lateral horn. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the lateral neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VA5 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA6. This neuron is born during the eighth division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis. The axons of these neurons innervate a small area at the ventroposterior edge of the lateral horn. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VA7l. This neuron is born from the 13th division of neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the lateral neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VA7m (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ALl1 dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VC1 (Bates et al., 2020). It connects to the mushroom body and lateral horn via the inner antennocerebral tract (medial antennal lobe tract) (Lin et al., 2012). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ALl1 dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VC2 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). Existence confirmed by Greg Jefferis (personal communication).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VC3l. Neurons of this class are derived from the 17th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around four of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729. Only VC3-innervating adPN in Bates et al. (2020) is VC3l adPN.
Adult uniglomerular antennal lobe projection neuron from the ALlv1 neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VC3m (Bates et al., 2020). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VC4. Neurons of this class are derived from the 14th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult unilateral, uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus VC5 (Bates et al., 2020). It receives primarily olfactory input (Marin et al., 2020). This neuron is born from the seventh division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is approximately one of these cells per hemisphere, it is cholinergic and it fasciculates with the medial antennal lobe tract to project to the mushroom body calyx and lateral horn (Bates et al., 2020; Marin et al., 2020). For image, see FlyBase:FBrf0211729. Yu et al. (2010) classify this neuron as uniglomerular. Also classified as uniglomerular by Bates et al. (2020), who clarify that it mainly innervates VC5, with some additional branches in other glomeruli (uni+ class).
Adult uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) lineage with dendrites that mainly innervate antennal lobe glomerulus VC5 in both hemispheres (Bates et al., 2020; Marin et al., 2020). It receives primarily olfactory input (Marin et al., 2020). It fasciculates with the ipsilateral medial antennal lobe tract to innervate the lateral horn (Marin et al., 2020). There are approximately two of these cells per hemisphere and they are cholinergic (Bates et al., 2020; Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) lineage with dendrites that mainly innervate antennal lobe glomerulus VC5 (Bates et al., 2020; Marin et al., 2020). It receives primarily olfactory input (Marin et al., 2020). It fasciculates with the medial antennal lobe tract to innervate the lateral horn (Marin et al., 2020). There is one of these cells per hemisphere and it is cholinergic (Bates et al., 2020; Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALl1 (BAlc) ventral hemilineage with dendrites that mainly innervate antennal lobe glomerulus VC5 (Bates et al., 2020; Marin et al., 2020). It receives primarily olfactory input (Marin et al., 2020). There are approximately two of these cells per hemisphere and they fasciculate with the transverse antennal lobe t3ALT tract to innervate the posterior lateral protocerebrum and the wedge (Frank et al., 2015; Bates et al., 2020; Marin et al., 2020). It responds slowly to hot and cold stimuli (Frank et al., 2015). Mapped to M_l2PN3t18 based on body ID in Marin et al. (2020) supplement and notes in neuprint.
Adult multiglomerular antennal lobe projection neuron from the ALl1 (BAlc) ventral hemilineage with dendrites that mainly innervate antennal lobe glomerulus VC5 in both hemispheres (Bates et al., 2020; Marin et al., 2020). There is one of these cells per hemisphere and it fasciculates with the transverse antennal lobe t10ALT tract to innervate the ipsilateral posterior lateral protocerebrum and wedge (Bates et al., 2020; Marin et al., 2020). VC5 ++ l2PN 2 and VP3++ l2PN both mapped to M_l2PN10t19 in Marin et al. (2020) supplement and notes in neuprint.
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus VL1 (FBbt:00003954).
Adult uniglomerular antennal lobe projection neuron with its soma in the lateral subesophageal zone and dendrites that mainly innervate antennal lobe glomerulus VL1 (Tanaka et al., 2012; Bates et al., 2020). It bifurcates below the esophagus and has roughly symmetrical innervation in both hemispheres (Tanaka et al., 2012). It follows the mALT, sending branches to the central part of the mushroom body calyx and the posterior ventral lateral horn (Tanaka et a., 2012; Bates et al., 2020). There is one of these per hemisphere and it is cholinergic (Bates et al., 2020). Corresponds to AL-mPN2 from Tanaka et al. (2012) (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ventral neuroblast (ALv1) lineage with dendrites that mainly innervate antennal lobe glomerulus VL1 (Marin et al., 2002; Silbering et al., 2011). Its axon exhibits a diffuse and highly complex pattern of arborization along the ventral border of the lateral horn (Marin et al., 2002; Silbering et al., 2011). It follows the mediolateral antennal lobe tract, bypassing the mushroom body (Silbering et al., 2011; Bates et al., 2020). There is around one of these cells per hemisphere and it is GABAergic (Bates et al., 2020).
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus VL2a (FBbt:00007106).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VL2a. This neuron is born from the tenth division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). It innervates the antero-ventral lateral horn (Grosjean et al., 2011). Its terminals in this region overlap extensively with the terminals of DA1 and VA1lm projection neurons, which have been implicated in a pheromone-sensing pathway (Jefferis et al., 2007). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus VL2a. There are around three of these in each antennal lobe, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 1 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage (embryonic born) with dendrites that mainly innervate antennal lobe glomerulus VL2p. This neuron is born in the third division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the lateral antennal lobe neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VL2p. The axons of these neurons innervate the lateral horn. Existence confirmed by Greg Jefferis (personal communication). Neuron not shown in Jefferis et al. (2007) and not found in FAFB data by Bates et al. (2020), so not clear if this is really lPN or l2PN.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus VL2p (Bates et al., 2020). There is one of these per hemisphere, it fasciculates with the mediolateral antennal lobe tract and it is GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 1 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the lateral antennal lobe neuroblast (ALl1) dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VM1 (Bates et al., 2020). The axons of these neurons innervate the lateral horn. There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult unilateral, panglomerular antennal lobe projection neuron from the lateral antennal lobe neuroblast (ALl1) ventral hemilineage with dendrites that have substantial presynaptic sites in antennal lobe glomerulus VM1 (Bates et al., 2020; Marin et al., 2020). It fasciculates with the medial antennal lobe tract and innervates the mushroom body calyx, lateral horn and posterior lateral protocerebrum (Marin et al., 2020). There is one of these per hemisphere (Bates et al., 2020; Marin et al., 2020). Mapped to M_l2PNm16 based on body ID in Marin et al. (2020) supplement and notes in neuprint, but another cell of M_l2PNm16 type in hemibrain 1.2 data not mapped to VM1++ l2PN. Mapped to ALPN4 from Li et al. (2020) based on neuprint bodyID and notes.
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus VM2 (FBbt:00003947).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus VM2. Neurons of this class are derived from the 11th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). The axons of these neurons innervate a small area at the dorsoposterior edge of the lateral horn. There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALv1 (BAla1) lineage with dendrites that mainly innervate antennal lobe glomerulus VM2 (Bates et al., 2020). There are three of these per hemisphere, they fasciculate with the mediolateral antennal lobe tract and they are GABAergic (Bates et al., 2020). It is a mediolateral antennal lobe tract projection neuron 2 (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage (embryonic born) with dendrites that mainly innervate antennal lobe glomerulus VM3. Neurons of this class are born during the 17th and 19th divisions of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Any uniglomerular antennal lobe projection neuron (FBbt:00007383) that receives synaptic input throughout some antennal lobe glomerulus VM4 (FBbt:00003957).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VM4. This neuron is born from the sixth division of the neuroblast ALad1 (FBbt:00067346) during embryogenesis (Yu et al., 2010). There is around one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) lineage with dendrites that mainly innervate antennal lobe glomerulus VM4 (Bates et al., 2020). There are two of these per antennal lobe, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron with dendrites that mainly innervate antennal lobe glomerulus VM5.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus VM5d. Neurons of this class are derived from the 15th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around four of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast (ALad1) lineage with dendrites that mainly innervate antennal lobe glomerulus VM5v. Neurons of this class are derived from the 16th larval division of the neuroblast ALad1 (FBbt:00067346) (Yu et al., 2010). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VM7 (Yu et al., 2010).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VM7d (Grabe et al., 2016). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ad neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VM7v (also known as glomerulus 1). Neurons of this class derive from the ninth larval division of the ALad1 neuroblast (FBbt:00067346). There are around two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020). For image, see FlyBase:FBrf0211729.1 adPN has been renamed to VM7v to be consistent with the change of glomerulus name from glomerulus 1 to glomerulus VM7v.
Adult antennal lobe projection neuron with its cell body in the lateral subesophageal ganglion and dendrites that innervate antennal lobe glomerulus VP1 (Yagi et al., 2016). It projects via the medial antennal lobe tract to the mushroom body calyx and the posterior part of the dorsal accessory calyx and it also has terminals in the lateral horn (Yagi et al., 2016). The only mALT VP1 neuron in the lateral subesophageal zone in Bates et al. (2020) EM data is VP1l+VP3 ilPN (bilateral VP3 PN) - these classes may be equivalent.
Adult uniglomerular antennal lobe projection neuron with its cell body in the lateral subesophageal ganglion and dendrites that mainly innervate antennal lobe glomerulus VP1d (Marin et al., 2020). It projects via the dorsal antennal lobe tract to the mushroom body calyx and the lateral horn (Marin et al., 2020). Before entering the antennal lobe, it crosses the midline in the subesophageal zone and it has a bilaterally-symmetrical innervation pattern (Marin et al., 2020). There is one of these cells per hemisphere (Bates et al., 2020; Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the dorsal hemilineage of the lateral neuroblast (ALl1) whose dendrites innervate antennal lobe glomerulus VP1d (Bates et al., 2020; Marin et al., 2020). It receives primarily olfactory input (Marin et al., 2020). It fasciculates with the medial antennal lobe tract to innervate the mushroom body calyx, in some cases continuing to the lateral horn (Marin et al., 2020). There are around five of these per hemisphere and they are cholinergic (Marin et al., 2020; Bates et al., 2020). Unlike Marin et al. (2020), Bates et al. (2020) distinguish one of these (#1 in Marin et al., 2020) as a separate type that is pan-glomerular. Mapped to M_lPNm11D based on body IDs in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral, multiglomerular antennal lobe projection neuron that develops from the ventral neuroblast (ALv1) and has substantial dendritic arborization in antennal lobe glomerulus VP1d (Marin et al., 2020; Bates et al., 2020). It follows the mediolateral antennal lobe tract to the lateral horn (Marin et al., 2020). There are around three of these cells per hemisphere and they are GABAergic (Marin et al., 2020; Bates et al., 2020). Mapped to M_vPNml60 based on body ID in Marin et al. (2020) and neuprint notes.
Adult unilateral, multiglomerular antennal lobe projection neuron that develops from the ventral neuroblast (ALv1) and has substantial dendritic arborization in antennal lobe glomeruli VP1d and VP1l (Marin et al., 2020; Bates et al., 2020). It follows the mediolateral antennal lobe tract to the lateral horn (Marin et al., 2020). There is one of these cells per hemisphere and it is GABAergic (Marin et al., 2020; Bates et al., 2020). One of two M_vPNml61 cells mapped to VP1d+VP1l vPN in Marin et al. (2020) supplement and neuprint notes.
Adult multiglomerular antennal lobe projection neuron that is part of the ALl1 (BAlc) ventral hemilineage and has its antennal lobe dendrites in both antennal lobes, mainly in VP1d and VP4 (Marin et al., 2020; Bates et al., 2020). It has ipsilateral projections via the lateral antennal lobe tract to the lateral horn and mushroom body calyx (Marin et al., 2020). There is one of these cells per hemisphere (Bates et al., 2020; Marin et al., 2020).
Adult unilateral multiglomerular antennal lobe projection neuron that is part of the ALl1 (BAlc) ventral hemilineage and has its antennal lobe dendrites mainly in VP1d and VP4 (Marin et al., 2020; Bates et al., 2020). It projects via the lateral antennal lobe tract to the lateral horn and mushroom body calyx (Marin et al., 2020). There is one of these cells per hemisphere (Bates et al., 2020; Marin et al., 2020).
Adult unilateral, uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VC3l (Bates et al., 2020; Marin et al., 2020). There are around three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the superior medial protocerebrum and superior lateral protocerebrum (Marin et al., 2020).
Adult uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VC3l, with a branch extending to the contralateral antennal lobe (Bates et al., 2020; Marin et al., 2020). There is one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the ipsilateral superior medial protocerebrum, superior lateral protocerebrum and lateral horn (Marin et al., 2020). Mapped to M_lvPNm36 based on body ID in Marin et al. (2020) supplement and neuprint notes.
Adult unilateral, panglomerular antennal lobe projection neuron from the dorsal hemilineage of the lateral neuroblast (ALl1) with substantial dendritic innervation of antennal lobe glomerulus VP1l (Bates et al., 2020; Marin et al., 2020). It receives primarily olfactory input (Marin et al., 2020). It fasciculates with the medial antennal lobe tract to innervate the mushroom body calyx, before curving ventrally to innervate the posterior lateral protocerebrum (Marin et al., 2020). There is around one of these per hemisphere and it is cholinergic (Marin et al., 2020; Bates et al., 2020). Mapped to M_lPNm11B based on body ID in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral, uniglomerular antennal lobe projection neuron that is part of the ALl1 (BAlc) ventral hemilineage and has its antennal lobe dendrites mainly in VP1m (Marin et al., 2020; Bates et al., 2020). It projects via the lateral antennal lobe tract to the mushroom body calyx and lateral horn (Marin et al., 2020). There is one of these cells per hemisphere (Bates et al., 2020; Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that innervate antennal lobe glomerulus VP1m (Bates et al., 2020; Marin et al., 2020). There is one of these per hemisphere and it fasciculates with the transverse antennal lobe t2ALT tract (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and lateral horn (Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALl1 (BAlc) ventral hemilineage with dendrites that innervate antennal lobe glomerulus VP1m (Bates et al., 2020; Marin et al., 2020). It receives mainly olfactory input (Marin et al., 2020). There is one of these per hemisphere and it fasciculates with the lateral antennal lobe tract (Bates et al., 2020; Marin et al., 2020). It projects to the lateral horn and superior lateral protocerebrum (Marin et al., 2020). Mapped to M_l2PNl23 based on body ID in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that innervate antennal lobe glomerulus VP1m (Bates et al., 2020; Marin et al., 2020). There is one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and lateral horn (Marin et al., 2020).
Adult panglomerular antennal lobe projection neuron with its soma superior and medial to the antennal lobe and dendrites that enter both antennal lobes and have substantial innervation in antennal lobe glomerulus VP1m (Marin et al., 2020; Bates et al., 2020). It receives primarily olfactory input (Marin et al., 2020). There is one of these cells per hemisphere and it fasciculates with the contralateral transverse antennal lobe t6ALT tract to innervate the lateral horn and mushroom body calyx (Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron of the ALv1 (BAla1) lineage with dendrites that have substantial innervation in antennal lobe glomerulus VP1m (Marin et al., 2020; Bates et al., 2020). It receives primarily olfactory input (Marin et al., 2020). It fasciculates with the mediolateral antennal lobe tract to innervate the lateral horn (Marin et al., 2020). There is one of these cells per hemisphere and it is GABAergic (Bates et al., 2020; Marin et al., 2020). One of two M_vPNml66 cells mapped to VP1m++ vPN in Marin et al. (2020) supplement and neuprint notes.
Adult unilateral, multiglomerular antennal lobe projection neuron that develops from the ventral neuroblast (ALv1) and has substantial dendritic arborization in antennal lobe glomeruli VP1m and VP1d (Marin et al., 2020; Bates et al., 2020). It follows the mediolateral antennal lobe tract to the lateral horn (Marin et al., 2020). There is one of these cells per hemisphere and it is GABAergic (Marin et al., 2020; Bates et al., 2020). Mapped to M_vPNml62 based on body ID in Marin et al. (2020) supplement and neuprint notes.
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that innervate antennal lobe glomeruli VP1m and VP2 (Bates et al., 2020; Marin et al., 2020). There are three of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and lateral horn (Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that innervate antennal lobe glomeruli VP1m and VP2 (Bates et al., 2020; Marin et al., 2020). There is one of these per hemisphere and it fasciculates with the transverse antennal lobe t2ALT tract (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and lateral horn (Marin et al., 2020).
Adult bilateral oligoglomerular antennal lobe projection neuron that is synapsed by adult olfactory receptor neuron Ir68a VP5 in the antennal lobe glomerulus VP5 (Frank et al., 2017) and also receives input in VP1m (Marin et al., 2020). It relays information regarding increased humidity to higher brain centers (Frank et al., 2017) via the medial antennal lobe tract (Marin et al., 2020). There is one of these per hemisphere, with its cell body in the lateral subesophageal zone (Bates et al., 2020; Marin et al., 2020). Synapsing with ORN Ir68a shown by GRASP (Frank et al., 2017).
Adult uniglomerular antennal lobe projection neuron that develops from the ALad1 neuroblast and has dendrites that mainly innervate antennal lobe glomerulus VP2 (Stocker et al., 1990; Marin et al., 2020). It projects via the medial antennal lobe tract to arborize in the mushroom body calyx, lateral accessory calyx and the lateral horn (Stocker et al., 1990; Marin et al., 2020). There is one of these per hemisphere and it is cholinergic (Marin et al., 2020).
Adult unilateral, uniglomerular antennal lobe projection neuron that is part of the ALl1 (BAlc) ventral hemilineage and has its antennal lobe dendrites mainly in VP2 (Marin et al., 2020; Bates et al., 2020). It projects via the lateral antennal lobe tract to the posterior lateral protocerebrum and lateral horn (Marin et al., 2020). There is one of these cells per hemisphere (Bates et al., 2020; Marin et al., 2020).
Adult uniglomerular antennal lobe projection neuron that develops from the ALad1 neuroblast and has dendrites that mainly innervate antennal lobe glomerulus VP2, but also has several antennal lobe arborizations outside of VP2 (Marin et al., 2020). It projects via the medial antennal lobe tract to arborize in the mushroom body calyx and the lateral protocerebrum (Marin et al., 2020). There is one of these per hemisphere and it is cholinergic (Marin et al., 2020).
Adult unilateral, multiglomerular antennal lobe projection neuron with its soma in a small cluster (lv2), close to the lvPNs (ALlv1 lineage) and dendrites that innervate antennal lobe glomerulus VP2 (Marin et al., 2020; Bates et al., 2020). It fasciculates with the transverse antennal lobe t9ALT tract to innervate the posterior lateral protocerebrum (Marin et al., 2020). Primarily olfactory (Marin et al., 2020). One cell in FAFB (Marin et al., 2020; Bates et al., 2020), two in hemibrain 1.2 data.
Adult multiglomerular antennal lobe projection neuron from the ALlv1 neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VP2 (Bates et al., 2020; Marin et al., 2020). It receives mainly olfactory input (Marin et al., 2020). It fasciculates with the medial antennal lobe tract, then curves ventrally to innervate the posterior lateral protocerebrum (Marin et al., 2020). There is one of these per hemisphere and it is cholinergic (Bates et al., 2020; Marin et al., 2020). Bates et al. (2020) class this as panglomerular, but does not look it in Marin et al. (2020). Bates et al. (2020) also group this in the same morphological class as another ‘panglomerular’ PN mainly innervating DA2. One of two M_lvPNm47 cells mapped to VP2++ lvPN in Marin et al. (2020) supplement and neuprint notes.
Adult uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that mainly innervate the ipsilateral antennal lobe glomerulus VP2 and the medial subesophageal zone (Bates et al., 2020; Marin et al., 2020). There are one or two of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and the lateral horn (Marin et al., 2020). Mapped to VP2+Z_lvPN based on body ID in Marin et al. (2020) supplement and neuprint notes.
Adult unilateral, uniglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that mainly innervate antennal lobe glomerulus VP2 and also extend into the dorsal subesophageal zone (Bates et al., 2020; Marin et al., 2020). There is one of these per hemisphere, it fasciculates with the medial antennal lobe tract and it is cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and the lateral horn (Marin et al., 2020). Mapped to MZ_lvPN based on body ID in Marin et al. (2020) supplement and notes in neuprint.
Adult antennal lobe projection neuron whose dendrites mainly innervate the antennal lobe glomeruli VP2 and VC5 in both hemispheres (Marin et al., 2020). There is one of these cells per hemisphere and it belongs to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). It follows the ipsilateral lateral antennal lobe tract to the dorsal part of the posterior lateral protocerebrum, then turns ventrally (Lin et al., 2012; Marin et al., 2020). Bates et al. (2020) list this as uniglomerular, but there are two glomeruli in its name.
Adult unilateral, multiglomerular antennal lobe projection neuron from the ALlv1 (BAlp4) neuroblast lineage with dendrites that innervate antennal lobe glomeruli VP2 and VP5 (Bates et al., 2020; Marin et al., 2020). There may be four of these per hemisphere, they fasciculate with the medial antennal lobe tract and they are cholinergic (Bates et al., 2020; Marin et al., 2020). It projects to the mushroom body calyx and along the ventral part of the lateral horn to the posterior lateral protocerebrum (Marin et al., 2020). Mapped to M_lvPNm48 based on body IDs in Marin et al. (2020) supplement and neuprint notes.
Adult uniglomerular antennal lobe projection neuron with its cell body in the gnathal ganglion with dendrites that mainly innervate antennal lobe glomerulus VP3 (Yagi et al., 2016). It projects via the mediolateral antennal lobe tract to the mushroom body lateral accessory calyx (Yagi et al., 2016).
Adult uniglomerular antennal lobe projection neuron whose dendrites innervate the antennal lobe glomerulus VP3, unilaterally or bilaterally (Frank et al., 2015; Liu et al., 2015) and fasciculates with the transverse antennal lobe tract t10ALT (Marin et al., 2020) and innervates the posterior lateral protocerebrum (Frank et al., 2015; Liu et al., 2015; Marin et al., 2020). This neuron responds to cooling, showing strong adaptation to sustained temperature decreases (Frank et al., 2015; Liu et al., 2015). There are around 3-5 of these cells per hemisphere and they are part of the ALl1 (BAlc) ventral hemilineage (Liu et al., 2015; Bates et al., 2020; Marin et al., 2020). Tract updated to t10ALT based on Marin et al. (2020), who identified one unilateral and two bilateral subclasses.
Adult unilateral, uniglomerular antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus VP3 (Jenett et al., 2012; Liu et al., 2015; Frank et al., 2015; Bates et al., 2020; Marin et al., 2020). Most of its input in VP3 is from the non-aristal sensory neuron VP3 (Marin et al., 2020). It develops from the ALv1 (BAla1) neuroblast (Bates et al., 2020). It innervates the mushroom body lateral accessory calyx (Jenett et al., 2012; Liu et al., 2015; Frank et al., 2015; Marin et al., 2020). This neuron responds to cooling, showing weak adaptation to sustained temperature decreases (Liu et al., 2015). There is one of these cells per hemisphere and it is GABAergic (Bates et al., 2020; Marin et al., 2020). Marin et al. (2020) list tract as mlALT and hemibrain equivalent neuron name contains t10ALT; Bates et al. (2020) list tract as trans-mlALT; tract previously thought to be t5ALT in Frank et al. (2015); ’t5PN1’ as described in Jenett et al. (2012) follows mlALT. Mapped to VP3+_vPN based on Marin et al. (2020) supplement and neuprint notes.
Adult uniglomerular, unilateral antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus VP3 (Bates et al., 2020; Marin et al., 2020). There are one or two of these cells per hemisphere and they belong to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). A branch enters the inferior posterior slope and another follows the transverse antennal lobe t10ALT tract to the superior clamp (Marin et al., 2020).
Adult uniglomerular antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus VP3 in both hemispheres (Bates et al., 2020; Marin et al., 2020). There are one or two of these cells per hemisphere and they belong to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). A branch enters the inferior posterior slope and another follows the transverse antennal lobe t10ALT tract (Marin et al., 2020).
Adult multiglomerular antennal lobe projection neuron with its soma superior and medial to the antennal lobe and dendrites that innervate antennal lobe glomerulus VP3 in both hemispheres (Marin et al., 2020; Bates et al., 2020). There is one of these cells per hemisphere and it fasciculates with the contralateral medial antennal lobe tract to innervate the mushroom body calyx, lateral horn and posterior lateral protocerebrum (Marin et al., 2020).
Adult uniglomerular antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus VP3 in both hemispheres, with substantial terminals in neighboring parts of the antennal lobe (Bates et al., 2020; Marin et al., 2020). A branch enters the ipsilateral wedge and another follows the ipsilateral transverse antennal lobe t10ALT tract into the posterior lateral protocerebrum (Marin et al., 2020). There is one of these cells per hemisphere and it belongs to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). VC5 ++ l2PN 2 and VP3++ l2PN both mapped to M_l2PN10t19 in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral, uniglomerular antennal lobe projection neuron that develops from the ventral neuroblast (ALv1) and has dendrites that mainly innervate antennal lobe glomerulus VP4 (Marin et al., 2020; Bates et al., 2020). It follows the mediolateral antennal lobe tract to the mushroom body calyx and lateral horn (Marin et al., 2020). There is one of these cells per hemisphere and it is GABAergic (Marin et al., 2020; Bates et al., 2020). Bates et al. (2020) lists tract as trans-mlALT.
Adult uniglomerular antennal lobe projection neuron that develops from the ventral neuroblast (ALv1) and has dendrites that mainly innervate antennal lobe glomerulus VP4, with a branch crossing into the contralateral VP4 (Marin et al., 2020; Bates et al., 2020). It follows the mediolateral antennal lobe tract to the lateral horn, superior clamp and superior lateral protocerebrum (Marin et al., 2020). There is one of these cells per hemisphere and it is GABAergic (Marin et al., 2020; Bates et al., 2020). Mapped to ALPN3 based on Neuprint bodyID provided by author of FBrf0246721 [FBC:CP].
Adult antennal lobe projection neuron from the lateral antennal lobe (ALl1) neuroblast dorsal hemilineage with dendrites that mainly innervate antennal lobe glomerulus VP4, but also have substantial arborization in other glomeruli (Marin et al., 2020). A projection also crosses the midline to innervate the contralateral antennal lobe (Marin et al., 2020). It fasciculates with the medial antennal lobe tract and reaches the lateral horn, then turns ventrally and descends to the inferior posterior slope (Marin et al., 2020). There are around three of these per hemisphere and they are cholinergic (Marin et al., 2020). Mapped to M_lPNm11A based on body IDs in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral, uniglomerular antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomerulus VP5 (Marin et al., 2020). There is one of these cells per hemisphere and it belongs to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). It innervates the wedge and posterior lateral protocerebrum with one branch fasciculating with the transverse antennal lobe t10ALT tract (Marin et al., 2020). Mapped to hemibrain VP5+_l2PN based on body ID in Marin et al. (2020) supplement.
Adult unilateral, multiglomerular antennal lobe projection neuron that receives its greatest antennal lobe input in glomerulus VP5 (Marin et al., 2020; Bates et al., 2020). There is one of these cells per hemisphere and it belongs to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). It fasciculates with the medial antennal lobe tract to innervate the mushroom body calyx and lateral horn (Marin et al., 2020). Mapped to M_l2PNm17 based on body ID in Marin et al. (2020) supplement and notes in neuprint.
Adult unilateral antennal lobe projection neuron whose dendrites mainly innervate the antennal lobe glomeruli VP5 and VP2 (Marin et al., 2020). It fasciculates with the transverse antennal lobe t10ALT tract and innervates the posterior slope and posterior lateral protocerebrum, in some cases reaching the lateral horn (Frank et al., 2015; Liu et al., 2015; Marin et al., 2020). This neuron responds to heating (Frank et al., 2015; Liu et al., 2015). There are one or two of these cells per hemisphere and they are part of the ALl1 (BAlc) ventral hemilineage (Bates et al., 2020; Marin et al., 2020). Tract and glomeruli updated according to Marin et al. (2020). Classified as uniglomerular by Bates et al. (2020), despite two glomeruli in name.
Adult oligoglomerular, unilateral antennal lobe projection neuron whose dendrites mainly innervate antennal lobe glomeruli VP5 and VP3 (Bates et al., 2020; Marin et al., 2020). There is one of these cells per hemisphere and it belongs to the ALl1 (BAlc) ventral hemilineage (Marin et al., 2020; Bates et al., 2020). It innervates the wedge and posterior lateral protocerebrum and a branch follows the transverse antennal lobe t10ALT tract to the lateral horn (Marin et al., 2020).
Any antennal lobe projection neuron (FBbt:00007422) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast ALv1 (FBbt:00067348).
Sensory neuron of the antenna that detects a stimulus via one or more receptors and projects to the antennal lobe (Schlegel et al., 2021). This includes antennal olfactory, thermosensory and hygrosensory neurons (Schlegel et al., 2021).
Antennal lobe tract of the adult. It connects the antennal lobe to various neuropils of the protocerebrum.
Any projection neuron (FBbt:00007392) that receives synaptic input in region some antennal mechanosensory and motor center (FBbt:00003982).
Nerve that carries axons associated with the antenna and upper head capsule to the brain (It et al., 2014). Near its entrance to the brain it consists of about 1700-1800 axons (Stocker, 1979; Stocker and Gendre, 1988). Approximately 1100-1200 of these are sensory fibers from the third antennal segment, mainly axons from olfactory receptor neurons that project to the antennal lobe ventrally, at its antero-ventral corner (Stocker, 1979; Stocker and Gendre, 1988; Kamikouchi et al., 2006). The remaining 500-600 fibers stem mainly from Johnston’s organ neurons and mechanosensory sensilla of the anterior head capsule, which target neuropil domains outside of the antennal lobe, including the antennal mechanosensory and motor center (Stocker, 1979; Kamikouchi et al., 2006). A few fibers from this nerve project to the gnathal ganglion and the ventrolateral protocerebrum (Ito et al., 2014). Stocker and Gendre provide the antennal nerve afferent counts based on TEM micrographs (Stocker and Gendre, 1988). Gross projection patterns within the brain were elucidated by Holmes-Blest reduced silver impregnation (Stocker et al., 1990). That the antennal nerve is composed of some 1200 third antennal segments and 500-600 fibers stemming from the JON and mechanosensory sensilla is based on two lines of evidence: 24hours after amputation of the funiculus, degeneration is seen in all but 500-600 fibers entering the antennal mechanosensory and motor center (Stocker et al., 1990); and Kamikouchi et al., (2006) used enhancer trap labelling and immunolabelling of JONs to trace their projections.
Odorant receptor neuron (ORN) whose dendrite transduces signals from some antennal sensillum. The axons of these neurons fasciculate in the antennal nerve and innervate the antennal lobe.
Any antennal segment (FBbt:00000009) that is part of some adult head (FBbt:00003007).
Any sense organ (FBbt:00005155) that is part of some antenna (FBbt:00004511).
Any sensillum (FBbt:00007152) that is part of some antenna (FBbt:00004511).
Adult sensory neuron that receives sensory input in the antenna.
Neurosecretory cell of the adult pars lateralis that innervates the corpus cardiacum and aorta (Siegmund and Korge, 2001).
Any anterior abdominal segment (FBbt:00052393) that is part of some adult (FBbt:00003004).
Auditory system neuron of the adult brain that preferentially responds to male pulse, rather than sine, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and posterior ventrolateral protocerebrum and it crosses the midline (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Adult commissure found at the ventralmost margin of the anterior part of the neuromere, outside of the cell body rind (Court et al., 2020). It is derived from the larval anterior ventral commissure, which becomes segregated into two (anterior and posterior) adult commissures, and is formed by the primary neurite bundles of hemilineage 1A (Court et al., 2020). There is one in each thoracic segment (Court et al., 2020).
Region of the adult brain cell body rind that overlies the synaptic neuropil of the anterior part of the brain (Ito et al., 2014). It includes the regions anterior to the superior neuropils, anterior ventrolateral protocerebrum and crepine, the regions anterior and ventral to the anterior optic tubercle, the regions anterodorsal, laterodorsal, lateral and ventral to the antennal lobe, and the region medioventral to the saddle (Ito et al., 2014).
A commissure located anterior and dorsal of the fan-shaped body which connects the two superior lateral protocerebrum synaptic neuropil domains of the adult brain. From Strausfeld (FlyBase:FBrf0239233, FlyBase:FBrf0239234) pg 65 in Musca Domestica. Confirmed as present in Drosophila melanogaster by VH & WP.
Commissure formed from very few fibers (possibly just four) of the anterior dorsal mesothoracic nerve projecting medially to the contralateral side of the mesothoracic neuromere (Power, 1948).
The largest and anterior-most of the two dorsal mesothoracic nerves (Power, 1948; Court et al., 2020). It extends dorso-anteriorly from the ventral nerve cord and then dorso-laterally, bending around the anterior face of the anterior tergosternal muscles before splitting into branches that innervate the lateral muscles near the body wall, beneath the base of the wing (Power, 1948). It also sends a branch between the anterior tergosternal muscles (Power, 1948). As well as the coarse motor fibers, this nerve also carries fine sensory fibers from the wing (Power, 1948).
Primary neurite tract of the anterior dorsal (AD) adult brain in the first clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AD tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior dorsal (AD) adult brain in the second clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AD tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior dorsal (AD) adult brain in the third clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AD tracts that enter the lateral horn (Frechter et al., 2019).
Primary neurite tract of the anterior dorsal (AD) adult brain in the fourth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AD tracts that enter the lateral horn (Frechter et al., 2019).
Primary neurite tract of the anterior dorsal (AD) adult brain in the fifth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AD tracts that enter the lateral horn (Frechter et al., 2019).
Segment of the adult hindgut extending from the pylorus to the rectal valve.
Any adult ventral nerve cord commissure that develops from a larval anterior intermediate commissure. There are three of these in the prothoracic and mesothoracic neuromeres and two in the metathoracic neuromere (Court et al., 2020). They collectively contain fibers of hemilineages 7B, 8B, 10B and, in the mesothoracic and metathoracic neuromeres, 18B (Court et al., 2020).
Adult neuron that expresses Tachykinin (FBgn0037976) whose cell body is located in the anterior subesophageal zone and innervates the thoracico-abdominal ganglia. There is one neuron per hemisphere (Winther et al., 2003; Siviter et al., 2000). Tachykinin expression was observed by in situ hybridization and immunostaining (Winther et al., 2003; Siviter et al., 2000).
Anterior component of the lateral ellipsoid fascicle in the adult brain (Lovick et al., 2013). It is formed by the DALv2 and DALv3 lineages and it passes underneath the mushroom body medial lobe towards the central complex (Lovick et al., 2013).
Anterior tract of the adult lateral equatorial fascicle (Lovick et al., 2013). It contains axons of the DALv1 lineage (Lovick et al., 2013).
Anterior component of the adult longitudinal superior lateral fascicle (Lovick et al., 2013). It is formed by the DPLd posterior hemilineage secondary neurons (Lovick et al., 2013).
Anterior part of the adult longitudinal superior medial fascicle that is formed by posterior projections of the DAMd2/3 lineages (Wong et al., 2013; Lovick et al., 2013). It innervates the superior intermediate protocerebrum, superior medial protocerebrum, and superior clamp (Wong et al., 2013).
Malpighian tubule attached to the right hand side of the adult alimentary canal and lying in an anterior orientation (Wessing and Eichelberg, 1978).
Anterior of the two adult metathoracic posterior anterior ventral commissures (Court et al., 2020).
Broad subdivision of the midgut. This is the anteriormost of the three traditional sections (anterior, middle and posterior) and has a neutral pH.
Class I enteroendocrine cell localized in the anterior midgut of the adult. These cells express Orcokinin B in addition to Allatostatin C (Chen et al., 2016; Guo et al., 2019).
Class II enteroendocrine cell localized in the anterior midgut of the adult. These cells express NPF and Dh31 in addition to Tachykinin (Chen et al., 2016; Guo et al., 2019).
Anteriormost part of the adult midgut epithelium, bordering the acidic middle midgut at its posterior end. Enterocytes have distinct morphologies in different subregions of this portion of the epithelium.
Tract that emerges from the medial part of the lobula (Ito et al., 2014). One branch ends in the anterior optic tubercle (AOTU) whilst the other makes a medial turn to terminate in the superior medial posterior ventrolateral protocerebrum (PVLP) of the adult brain (Ito et al., 2014). It demarcates the boundaries of the PVLP (lateral region), anterior VLP (superior and lateral region), AOTU (inferior-lateral region) and lateral horn (inferior region) (Ito et al., 2014). Fischbach and Lyly-Hunerberg, (1983), subdivide the anterior optic tract (AOT) into four sub-bundles: S1-S4. S1 consists of 100-110 think axons surrounded by ~60 large diameter neurons that form the S2 bundle. These bundles together occupy the proximal part of the AOT close to the neuropil of the lateral protocerebrum. S3 forms the lateral ventral part of the AOT and is formed by ~430 axons of small diameter that project into the anterior optic foci. S4 is composed of approximately 660 relatively small fibers.
Adult neuron belonging to group 001 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 002 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 003 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 004 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 005 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 006 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 007 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 008 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 009 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 010 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 011 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 012 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 013 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 014 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 015 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 016 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 017 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 018 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 019 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 020 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 021 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 022 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 023 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 024 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 025 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 026 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 027 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 028 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 029 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 030 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 031 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 032 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 033 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 034 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 035 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 036 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 037 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 038 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 039 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 040 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 041 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 042 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 043 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 044 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 045 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 046 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 047 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 048 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 049 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 050 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 051 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 052 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 053 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 054 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 055 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 056 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 057 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 058 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 059 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 060 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 061 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 062 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 063 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 064 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 065 of the terra incognita neurons with substantial synapsing in the anterior optic tubercle (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Anterior region of the pars intercerebralis of the adult (de Velasco et al., 2007; Ito et al., 2014).
Emerging from cells located in the lateral cell body region, the anterior superior lateral protocerebrum fascicle exhibits a J-shape and terminates in the boundary between the superior intermediate protocerebrum and the superior lateral protocerebrum (SLP) just posterior to the anterior optic tubercle of the adult brain (Ito et al., 2014). It demarcates the inferior boundary of the SLP with the superior intermediate protocerebrum, anterior and posterior ventrolateral protocerebrum and superior clamp (Ito et al., 2014). Thought to be equivalent to (adult) trSA of Pereanu et al. (2010) based on characteristic shape/position and lateral lineage composition [FBC:CP].
The anterior-most spiracle of the adult thorax. It is located in the ventral mesothorax and opens out into the propleural air sac. Manning and Krasnow (1993) assign this spiracle to the mesothoracic segment, as we have done here, despite recording its origin as being from tracheoblasts associated with the humeral (dorsal prothoracic) disc.
Any adult ventral nerve cord commissure that develops from a larval anterior ventral commissure. There are two of these in the prothoracic and mesothoracic neuromeres and three in the metathoracic neuromere (Court et al., 2020). They collectively contain fibers of hemilineages 1A, 13B and 14A (Court et al., 2020).
Primary neurite tract of the anterior ventral (AV) adult brain in the first clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the second clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the third clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the fourth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly local neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the fifth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the sixth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the seventh clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019). Lateral horn neurons that enter the neuropil via this tract are predominantly output neurons (Frechter et al., 2019).
Primary neurite tract of the anterior ventral (AV) adult brain in the eighth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019; Bates et al., 2020).
Primary neurite tract of the anterior ventral (AV) adult brain in the ninth clockwise position (from anterior perspective), from ventrolateral to dorsal to ventromedial, of AV tracts that enter the lateral horn (Frechter et al., 2019; Schlegel et al., 2021).
Adult sensory region of the subesophageal zone that develops from the larval anterior ventral sensory compartment (Kendroud et al., 2018). It receives fibers from the anterior root of the maxillary-labial nerve and fibers of the pharyngeal nerve (Kendroud et al., 2018).
Adult neuron belonging to group 001 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 002 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 003 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 004 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 005 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 006 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 007 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 008 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 009 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 010 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 011 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 012 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 013 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 014 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 015 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 016 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 017 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 018 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 019 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 020 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 021 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 022 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 023 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 024 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 025 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 026 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 027 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 028 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 029 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 030 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 031 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 032 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 033 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 034 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 035 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 036 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 037 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 038 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 039 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 040 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 041 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 042 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 043 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 044 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 045 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 046 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 047 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 048 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 049 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 050 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 051 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 052 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 053 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 054 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 055 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 056 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 057 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 058 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 059 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 060 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 061 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 062 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 063 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 064 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 065 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 066 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 067 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 068 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 069 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 070 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 071 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 072 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 073 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 074 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 075 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 076 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 077 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 078 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 079 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 080 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 081 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 082 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 083 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 084 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 085 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 086 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 087 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 088 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 089 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 090 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 091 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 092 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 093 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 094 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 095 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 096 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 097 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 098 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 099 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 100 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 101 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 102 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 103 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 104 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 105 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 106 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 107 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 108 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 109 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 110 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 111 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 112 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 113 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 114 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 115 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 116 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 117 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 118 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 119 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 120 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 121 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 122 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 123 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 124 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 125 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 126 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 127 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 128 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 129 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 130 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 131 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 132 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 133 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 134 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 135 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 136 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 137 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 138 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 139 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 140 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 141 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 142 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 143 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 144 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 145 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 146 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 147 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 148 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 149 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 150 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 151 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 152 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 153 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 154 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 155 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 156 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 157 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 158 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 159 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 160 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 161 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 162 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 163 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 164 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 165 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 166 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 167 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 168 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 169 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 170 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 171 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 172 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 173 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 174 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 175 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 176 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 177 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 178 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 179 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 180 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 181 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 182 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 183 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 184 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 185 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 186 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 187 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 188 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 189 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 190 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 191 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 192 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 193 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 194 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 195 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 196 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 197 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 198 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 199 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 200 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 201 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 202 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 203 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 204 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 205 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 206 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 207 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 208 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 209 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 210 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 211 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 212 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 213 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 214 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 215 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 216 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 217 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 218 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 219 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 220 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 221 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 222 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 223 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 224 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 225 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 226 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 227 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 228 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 229 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 230 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 231 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 232 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 233 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 234 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 235 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 236 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 237 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 238 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 239 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 240 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 241 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 242 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 243 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 244 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 245 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 246 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 247 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 248 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 249 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 250 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 251 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 252 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 253 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 254 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 255 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 256 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 257 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 258 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 259 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 260 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 261 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 262 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 263 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 264 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 265 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 266 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 267 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 268 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 269 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 270 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 271 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 272 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 273 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 274 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 275 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 276 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 277 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 278 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 279 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 280 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 281 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 282 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 283 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 284 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 285 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 286 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 287 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 288 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 289 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 290 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 291 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 292 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 293 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 294 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 295 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 296 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 297 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 298 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 299 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 300 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 301 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 302 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 303 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 304 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 305 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 306 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 307 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 308 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 309 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 310 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 311 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 312 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 313 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 314 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 315 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 316 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 317 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 318 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 319 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 320 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 321 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 322 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 323 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 324 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 325 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 326 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 327 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 328 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 329 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 330 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 331 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 332 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 333 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 334 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 335 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 336 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 337 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 338 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 339 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 340 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 341 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 342 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 343 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 344 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 345 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 346 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 347 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 348 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 349 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 350 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 351 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 352 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 353 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 354 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 355 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 356 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 357 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 358 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 359 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 360 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 361 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 362 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 363 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 364 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 365 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 366 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 367 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 368 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 369 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 370 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 371 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 372 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 373 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 374 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 375 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 376 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 377 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 378 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 379 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 380 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 381 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 382 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 383 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 384 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 385 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 386 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 387 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 388 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 389 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 390 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 391 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 392 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 393 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 394 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 395 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 396 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 397 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 398 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 399 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 400 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 401 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 402 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 403 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 404 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 405 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 406 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 407 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 408 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 409 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 410 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 411 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 412 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 413 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 414 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 415 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 416 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 417 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 418 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 419 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 420 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 421 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 422 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 423 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 424 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 425 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 426 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 427 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 428 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 429 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 430 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 431 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 432 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 433 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 434 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 435 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 436 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 437 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 438 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 439 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 440 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 441 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 442 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 443 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 444 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 445 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 446 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 447 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 448 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 449 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 450 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 451 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 452 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 453 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 454 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 455 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 456 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 457 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 458 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 459 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 460 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 461 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 462 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 463 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 464 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 465 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 466 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 467 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 468 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 469 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 470 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 471 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 472 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 473 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 474 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 475 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 476 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 477 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 478 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 479 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 480 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 481 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 482 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 483 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 484 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 485 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 486 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 487 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 488 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 489 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 490 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 491 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 492 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 493 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 494 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 495 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 496 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 497 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 498 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 499 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 500 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 501 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 502 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 503 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 504 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 505 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 506 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 507 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 508 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 509 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 510 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 511 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 512 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 513 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 514 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 515 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 516 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 517 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 518 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 519 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 520 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 521 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 522 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 523 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 524 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 525 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 526 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 527 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 528 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 529 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 530 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 531 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 532 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 533 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 534 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 535 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 536 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 537 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 538 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 539 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 540 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 541 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 542 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 543 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 544 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 545 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 546 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 547 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 548 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 549 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 550 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 551 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 552 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 553 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 554 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 555 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 556 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 557 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 558 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 559 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 560 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 561 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 562 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 563 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 564 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 565 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 566 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 567 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 568 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 569 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 570 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 571 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 572 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 573 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 574 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 575 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 576 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 577 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 578 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 579 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 580 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 581 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 582 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 583 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 584 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 585 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 586 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 587 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 588 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 589 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 590 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 591 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 592 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 593 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 594 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 595 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 596 of the terra incognita neurons with substantial synapsing in the anterior ventrolateral protocerebrum (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Auditory system neuron of the adult brain that preferentially responds to male sine, rather than pulse, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and it does not cross the midline (Baker et al., 2022). It is GABAergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that responds similarly to male sine and pulse courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum, it also innervates the posterior ventrolateral protocerebrum and inferior clamp (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that preferentially responds to male pulse, rather than sine, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum, it also innervates the inferior clamp and superior intermediate protocerebrum and it crosses the midline (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that preferentially responds to male sine, rather than pulse, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and it crosses the midline (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that preferentially responds to male sine, rather than pulse, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and it crosses the midline (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that preferentially responds to male sine, rather than pulse, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and it does not cross the midline (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that responds similarly to male sine and pulse courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum and it does not cross the midline (Baker et al., 2022). It is GABAergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Auditory system neuron of the adult brain that preferentially responds to male pulse, rather than sine, courtship song (Baker et al., 2022). Its main innervation is in the anterior ventrolateral protocerebrum (Baker et al., 2022). It is cholinergic (Baker et al., 2022). Cell type identified at light level and in EM data (Baker et al., 2022). Neurotransmitter predicted from EM data (Baker et al., 2022).
Adult neuron belonging to group 001 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 002 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 003 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 004 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 005 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 006 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 007 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 008 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 009 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 010 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 011 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 012 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 013 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 014 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 015 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 016 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 017 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 018 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 019 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 020 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 021 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 022 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 023 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 024 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 025 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 026 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 027 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 028 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 029 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 030 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 031 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 032 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 033 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 034 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 035 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 036 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 037 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 038 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 039 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 040 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 041 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 042 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 043 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 044 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Adult neuron belonging to group 045 of the terra incognita neurons with substantial synapsing in the antler (Scheffer et al., 2020). Uncharacterized putative cell type (based on clustering analysis) from Janelia hemibrain data (Scheffer et al., 2020).
Posterior opening of the adult hindgut.
The anterior portion of the adult dorsal vessel. It consist of a slender, thin walled tube extending from the heart, through the thorax and neck and into the occipital region of the head. At its junction with the heart it is widened to form a triangular chamber. From there it runs anteriorly, directly above the gut and beneath the median dorsal muscles of the thorax and finally opens into the hemocoel behind the brain. The open end is a funnel-shaped structure, the aortic funnel which is attached to the median occipital ridge. A pair of muscles (muscle 16) extend from the terminal opening at the anterior end, through the esophageal foramen of the brain to the frontal pulsatile organ (FBbt:00003175). The wall of the aorta is thin and lacks muscle striations.
The funnel-shaped region of the aorta at its anterior, open end. It is connected to the frontal pulsatile organ by the frontal pulsatile organ muscle 16.
Apodeme that is part of an adult.
Adult histaminergic neuron with its soma in the ventral nerve cord and an ascending projection through the cervical connective (Cheong et al., 2023). There are two pairs of these per organism, with somas in the metathoracic and mesothoracic neuromeres (Cheong et al., 2023).
Any adult neuron with its cell body in the thorax or abdomen (including appendages and ventral nerve cord) that passes through the cervical connective to the brain.
Adult gustatory projection neuron that ascends to the superior lateral protocerebrum of one hemisphere via the medial subesophageal zone (Taisz et al., 2022). Cell type identified in FAFB and Hemibrain (not typed in v1.2.1) by Taisz et al. (2022).
Adult aSP22 descending neuron of the female (McKellar et al., 2019). It is similar to the male neuron, with less dense arborization in some areas of the brain and an extra branch on the dorsal part of the neuron (McKellar et al., 2019). Its activation elicits proboscis extension and simultaneous movement of all legs (McKellar et al., 2019).
Adult aSP22 descending neuron of the male (McKellar et al., 2019). It is similar to the female neuron, with more dense arborization in some areas of the brain, but lacking a branch on the dorsal part of the neuron (McKellar et al., 2019). It is involved in male courtship behavior for the engagement of the female - proboscis extension, followed by abdominal bending, then foreleg lifting (McKellar et al., 2019). Activation also causes simultaneous movement of all legs prior to the engagement sequence (McKellar et al., 2019). It expresses the male isoform of fruitless (McKellar et al., 2019).
Sexually-dimorphic adult descending neuron with its soma in the superior protocerebrum (McKellar et al., 2019). It has arbors in many brain areas, including the anterior optic tubercle, subesophageal zone, inferior bridge, inferior and superior clamp, posterior ventrolateral, superior lateral and superior medial protocerebrum and superior posterior slope (McKellar et al., 2019). This arborization is predominantly ipsilateral, but one branch also crosses the midline in the supraesophageal ganglion (McKellar et al., 2019). It also innervates all ventral nerve cord neuromeres ipsilaterally (McKellar et al., 2019). The structure is quite similar in males and females, but there are some small differences in branching in the brain (McKellar et al., 2019). It innervates motor areas for the proboscis, legs and abdomen (McKellar et al., 2019). There is one of these cells per hemisphere and it elicits proboscis extension, more potently in males than females, and simultaneous movement of all legs (McKellar et al., 2019).
Adult interneuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has both dendritic and axonal arborization in the prow, flange and gnathal ganglion, with mixed synapse distribution within these regions (Sterne et al., 2021). It is mainly ipsilateral, but arborizes close to the midline (Sterne et al., 2021).
Adult local neuron with its soma in the ventral gnathal ganglion (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with mixed synapse distribution within this region (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
Neuropil associated glial cell of the adult central nervous system that has a dendritic morphology and elaborates inside the associated synaptic neuropil (Awasaki et al., 2008). Their nuclei are found at synaptic neuropil surfaces and they extend branched filiform or lamelliform processes that pervade the neuropil (Hartenstein, 2011).
Adult neuron that has columnar projections in the fan-shaped body (FB), arborizing in layer 8, and has mixed presynaptic and postsynaptic terminals in the asymmetrical body (AB) (Wolff and Rubin, 2018). Some of these neurons also have terminals in layer 1 of the FB (Wolff and Rubin, 2018; Hulse et al., 2020). Most of these follow a single column, but some extend through both lateralmost columns (Wolff and Rubin, 2018; Hulse et al., 2020). There are approximately 54 of these cells per fan-shaped body, defining approximately nine columns (Hulse et al., 2020). Neurons that innervate a left side column of the FB target the left AB and neurons that innervate right or central FB columns target the right AB (Hulse et al., 2020).
Adult mushroom body output neuron that has part of its dendritic arborization outside of the mushroom body, allowing integration of input from Kenyon cells with other information (Li et al., 2020). There are 14 types of these cells (Li et al., 2020).
Adult lateral horn input neuron that has its dendrites predominantly within the anterior ventrolateral protocerebrum (Dolan et al., 2019). It is a secondary neuron that is part of the BLP1 (VPNp&v) posterior hemilineage (Bates et al., 2020). There are ten of these neurons per hemisphere and they are cholinergic and GABAergic (Dolan et al., 2019). Both neurotransmitters detected by antibody staining (Dolan et al., 2019).
Adult local neuron with its soma in the ventral gnathal ganglion (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with mixed synapse distribution within this region (Sterne et al., 2021). It is bilateral, with most of its innervation in the contralateral hemisphere (Sterne et al., 2021).
A clone of neurons in the adult brain, all of which develop from neuroblast PSa1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAlp1 (FBbt:00100563).
A clone of neurons in the adult brain, all of which develop from neuroblast WEDa2.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAlp3 (FBbt:00100565).
A clone of neurons in the adult brain, all of which develop from neuroblast BAlv (WEDa1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAlv (FBbt:00100566).
A clone of neurons in the adult brain, all of which develop from neuroblast BAmas1 (FLAa2).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAmas1 (FBbt:00100555).
A clone of neurons in the adult brain, all of which develop from neuroblast BAmas2 (FLAa3) (female).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAmas2 (female) (FBbt:00050178).
A clone of neurons in the adult brain, all of which develop from neuroblast BAmas2 (FLAa3) (male).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAmas2 (male) (FBbt:00050009).
A clone of neurons in the adult brain, all of which develop from neuroblast BAmas2 (FLAa3).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAmas2 (FBbt:00100556).
Adult interneuron with its soma in the subesophageal zone (Sterne et al., 2021). It has axonal arborization in the prow and gnathal ganglion and both dendritic and axonal arborization in the antennal lobe (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
A clone of neurons in the adult brain, all of which develop from neuroblast BAMv2.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BAmv2 (FBbt:00100553).
Adult projection neuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has dendritic arborization in the gnathal ganglion and both dendritic and axonal arborization in the inferior posterior slope and superior posterior slope (Sterne et al., 2021). It is bilateral (Sterne et al., 2021).
Bilateral adult antennal lobe projection neuron with its soma in the lateral subesophageal zone (SEZ) and dendrites that innervate antennal lobe glomeruli VP3 (Stocker et al., 1990) and VP1l (Marin et al., 2020). It crosses the midline in the SEZ and has symmetrical innervation in both hemispheres (Marin et al., 2020). It fasciculates with the medial antennal lobe tract mALT (Stocker et al., 1990) to innervate the mushroom body calyx and lateral horn (Marin et al., 2020). There is one of these cells per hemisphere (Marin et al., 2020). Previously called adPN in label, but references say bilateral VP3 neuron is subesophageal (Stocker et al., 1990; Marin et al., 2020). Originally thought to be an AL-mPN2 (Tanaka et al., 2012 - FBrf0219809), but later discovered to be biglomerular (Marin et al., 2020).
Antennal lobe projection neuron whose dendrites innervate the antennal lobe glomeruli VP2 and VP3 ipsilaterally and additionally passes through the antennal lobe commissure to arborize in the contralateral VP2 glomerulus. It fasciculates with the medial antennal lobe tract (Stocker et al., 1990).
Bilateral adult antennal lobe projection neuron with its soma in the ventral subesophageal zone (SEZ) and dendrites that innervate antennal lobe glomeruli VP3 and VP1l (Marin et al., 2020). It crosses the midline in the SEZ and has symmetrical innervation in both hemispheres (Marin et al., 2020). It fasciculates with the medial antennal lobe tract mALT to innervate the mushroom body calyx and lateral horn (Marin et al., 2020). There is one of these cells per hemisphere (Marin et al., 2020). It is activated in response to cooling (Frank et al., 2015).
Adult male fruitless aSP-f neuron that crosses the midline (Kohl et al., 2013). Compared to the unilateral male aSP-f neuron, it has additional dendritic arborization ventral to the lateral horn (Kohl et al., 2013). Despite being synapsed by projection neurons from the DA1 antennal lobe glomerulus, it does not consistently respond to the sex pheromone cVA (Kohl et al., 2013).
Adult fruitless dMS2 neuron with arbors in both sides of the ventral nerve cord (Lillvis et al., 2024). In males, it is involved in sine, but not pulse, song generation (Lillvis et al., 2024). There are approximately 12 of these cells per organism (Lillvis et al., 2024). Only studied in males in Lillvis et al. (2024).
Adult fruitless vMS12 neuron with bilateral arbors (Lillvis et al., 2024). There are approximately 14 of these cells per organism (Lillvis et al., 2024). Includes the WBL011 and WBL012 cells from Erhardt et al. (2023) (Lillvis et al., 2024). MANC IN12A028 also includes some TN1A neurons (Lillvis et al., 2024).
Adult superior lateral protocerebrum-asymmetrical body neuron that crosses the midline, and innervates both the ipsilateral and contralateral asymmetrical bodies (Wolff and Rubin, 2018). This neuron is found in both hemispheres (Wolff and Rubin, 2018).
Adult bilateral local neuron of the subesophageal zone (Shiu et al., 2022). It receives substantial input from sugar-sensing gustatory neurons (Shiu et al., 2022).
A clone of neurons in the adult brain, all of which develop from neuroblast BLAd1 (LHa1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLAd1 (FBbt:00100614).
A clone of neurons in the adult brain, all of which develop from neuroblast BLAd2 (SIPa1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLAd2 (FBbt:00100615).
A clone of neurons in the adult brain, all of which develop from neuroblast BLAd3 (SLPal3).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLAd3 (FBbt:00100616).
A clone of neurons in the adult brain, all of which develop from neuroblast BLAv1 (VLPl&d1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLAv1 (FBbt:00100612).
A clone of neurons in the adult brain, all of which develop from neuroblast BLAv2 (VLPl2).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLAv2 (FBbt:00100613).
A clone of neurons in the adult brain, all of which develop from neuroblast BLD1 (LHl4).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLD1 (FBbt:00100620).
A clone of neurons in the adult brain, all of which develop from neuroblast BLD4 (LHl1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLD4 (FBbt:00100623).
A clone of neurons in the adult brain, all of which develop from neuroblast BLD6 (VPNd1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLD6 (FBbt:00049153).
A clone of neurons in the adult brain, all of which develop from neuroblast VLPp1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLP2 (FBbt:00100626).
A clone of neurons in the adult brain, all of which develop from neuroblast BLP4 (LHp1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLP4 (FBbt:00100628).
Adult interneuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with polarized synapse distribution within this region (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
Adult interneuron with its soma in the lateral gnathal ganglion (Sterne et al., 2021). It has axonal arborization in the vest, flange, cantle and superior posterior slope and both dendritic and axonal arborization in the gnathal ganglion (Sterne et al., 2021). It is bilateral (Sterne et al., 2021).
A clone of neurons in the adult brain, all of which develop from neuroblast BLVa1.
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLVa1 (FBbt:00100630).
A clone of neurons in the adult brain, all of which develop from neuroblast BLVp1 (VLPl&p2).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLVp1 (FBbt:00100633).
A clone of neurons in the adult brain, all of which develop from neuroblast BLVp2 (VLPl&p1).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and develops from some neuroblast BLVp2 (FBbt:00049157).
Adult descending neuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has axonal arborization in the ventral association center and both dendritic and axonal arborization in the gnathal ganglion (Sterne et al., 2021). In the brain it is bilateral, but most of its innervation is in the ipsilateral hemisphere, and it descends on the contralateral side (Sterne et al., 2021).
Adult neuron with its soma in the posterior superior margin of the brain, dendrites in the lateral protocerebrum and axons that project along the contralateral midline towards the subesophageal zone (Bidaye et al., 2020). It is involved in long, straight, fast forwards walking (Bidaye et al., 2020). There are eight of these cells per hemisphere (Bidaye et al., 2020).
Butterfly-shaped region of the posterior adult subesophageal zone (Munch et al., 2022). It has three subregions, whose activity in response to yeast stimulus is modulated by internal metabolic state (Munch et al., 2022). Munch et al. (2022) do not define this as a motor or sensory region.
Adult local neuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with biased synapse distribution within this region (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
Adult descending neuron with its soma in the ventral gnathal ganglion (Sterne et al., 2021). It has axonal arborization in the T1 leg neuropil and both dendritic and axonal arborization in the gnathal ganglion (Sterne et al., 2021). In the brain it is ipsilateral, and it descends on the ipsilateral side (Sterne et al., 2021).
Portion of the adult central nervous system found in the head, consisting of the cerebral and gnathal ganglia (Ito et al., 2014).
Glial cell of the adult that is associated with the cell body rind of the brain. They have multiple lamelliform processes that intercalate in between neurons and wrap neuronal cell bodies (Hartenstein, 2011). They also wrap neuronal processes as they travel across the cell body rind (Kremer et al., 2017).
Mesh-like structure composed of glial cells found in the cell body rind (cortex) of the adult brain (Awasaki et al., 2008). It is composed of cell body glial cells that locally elaborate and enwrap neuronal cell bodies (Awasaki et al., 2008).
Superficial layer of the brain, composed of glia and the cell bodies of neurons (soma). Ito et al. (2014) may further subdivide cortex/rind regions into multiple facets. Subdivisions should be denoted by the addition of a single letter body-axis direction, e.g. rLHa for anterior to the lateral horn; rSMPm for medial to the superior medial protocerebrum, etc.
[adult brain cell body rind on adult VNS template, Court2018; computer graphic; adult VNS template - Court2018]
Glial cell that is part of the glial sheath surrounding the neuropil of the adult brain.
[confocal microscopy; male organism; is part of; adult brain on Adult Head (McKellar2020); adult head]
Small, oblong-shaped glial cell that is part of the (outer) perineurial sheath layer on the surface of the adult brain. It is located on top of the basal glial cell layer that is composed of the subperineurial glial cells. The perineurial glial cells develop post-embryonically, in a non-GCM manner, and are thus likely to function only in the blood-brain-barrier of the adult (Edwards and Meinertzhagen, 2010).
Glial cell of the subperineurial glial sheath in the adult brain. These cells are fairly uniform in morphology across the brain, having a large, square and thin shape, giving them a sheet-like appearance (Awasaki et al., 2008, Kremer et al., 2017). Some also have circular protrusions that cap neuronal cell bodies not fully enclosed by cell body glia (Kremer et al., 2017).
Glial cell that is associated with the surface of the adult brain.
The official template for the BrainName nomnclature and accompanying painted domains for the Brain Name nomenclature (Ito et al., 2014). This ticolor brain feautres a presynaptic marker (n-syb-GFP, green), a post synaptic marker (GABA receptor targeted Rdl-HA receptor, blue) and a cytoplasmic marker (Cytoplasmic DsRed, red).
An adult brain template created by Arnim Jenett (Janelia Research Campus) and painted according the the BrainName standard by Arnim Jenett, Kazunori Shinomiya and Kei Ito (Tokyo University) from a staining with the neuropil marker nc82. The image was captured at 20x magnification. The voxel size is 0.62x0.62x0.62 micron.
Adult neuron with its soma in the subesophageal zone (Sterne et al., 2021). It has dendritic arborization in the cantle and prow (Sterne et al., 2021). It also projects outside of the central nervous system (Sterne et al., 2021). In the brain it is bilateral, with similar innervation in each hemisphere (Sterne et al., 2021).
Local (intrinsic) neuron of the adult antennal lobe (AL) that innervates all or most glomeruli (Schlegel et al., 2021). These cells typically have synapses distributed evenly, with little polarization, across at least 30 glomeruli (Schlegel et al., 2021).
Adult projection neuron with its soma in the subesophageal zone (Sterne et al., 2021). It has dendritic arborization in the gnathal ganglion and axonal arborization in the anterior ventrolateral protocerebrum (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021). Published as ‘brontosaraus’ in Sterne et al. (2021), may be misspelling of ‘brontosaurus’.
Adult interneuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has dendritic arborization in the inferior posterior slope, superior posterior slope, lateral accessory lobe, epaulette , saddle and gnathal ganglion and both dendritic and axonal arborization in the vest (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
Adult local neuron with its soma in the lateral subesophageal zone (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with mixed synapse distribution within this region (Sterne et al., 2021). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Sterne et al., 2021).
Neuron that receives input in the bulb and outputs onto the nubbin of the ellipsoid body (Wolff et al., 2015). It is the only neuron known to innervate the nubbin (Wolff et al., 2015).
Small field neuron of the central complex that innervates only the bulb (lateral triangle) and the lateral accessory lobe (ventral body). Hanesh et al. (1989) identified one cell type that fills the bulb with dense spiny arborizations and sends a small branch into the contralateral lateral accessory lobe.
Adult local neuron of the subesophageal zone (Shiu et al., 2022). It is bilateral, but most of its innervation is in the ipsilateral hemisphere (Shiu et al., 2022).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the ipsilateral intermediate tectulum of the mesothoracic neuromere and the contralateral prothoracic leg neuropil (Ehrhardt et al., 2023). It has mixed arborization in the ipsilateral lower tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the ipsilateral intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has mixed arborization in the ipsilateral lower tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has mixed arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral neck neuropil, intermediate tectulum of the mesothoracic neuromere and haltere neuropil (Ehrhardt et al., 2023). It has axonal arborization in the contralateral neck neuropil and haltere neuropil (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral neck neuropil and intermediate tectulum of the prothoracic neuromere (Ehrhardt et al., 2023). It has axonal arborization in the contralateral intermediate tectulum of the mesothoracic neuromere and lower tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has mixed arborization in the ipsilateral intermediate tectulum of the mesothoracic neuromere and mesothoracic leg neuropil (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the contralateral intermediate tectulum of the prothoracic neuromere and intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the contralateral intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the ipsilateral wing neuropil and the contralateral intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the ipsilateral wing neuropil and intermediate tectulum of the mesothoracic neuromere and the contralateral intermediate tectulum of the prothoracic neuromere and intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an intersegmental interneuron (Ehrhardt et al., 2023). It has dendritic arborization in the ipsilateral mesothoracic leg neuropil (Ehrhardt et al., 2023). It has axonal arborization in the ipsilateral intermediate tectulum of the mesothoracic neuromere and the contralateral intermediate tectulum of the prothoracic neuromere and intermediate tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It has its soma in a anterior-ventral-medial position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 7B hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per hemineuromere (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an interneuron that arborizes mainly within one neuromere of the VNC (Ehrhardt et al., 2023). It has mixed arborization in the intermediate tectulum of the mesothoracic neuromere and lower tectulum of the mesothoracic neuromere of both hemispheres (Ehrhardt et al., 2023). It has its soma in a ventral-medial-anterior position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 0A hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per organism (Ehrhardt et al., 2023).
Bilateral neuron of the adult ventral nerve cord that primarily arborizes in the tectulum of the mesothoracic neuromere (Ehrhardt et al., 2023). It is an interneuron that arborizes mainly within one neuromere of the VNC (Ehrhardt et al., 2023). It has mixed arborization in the intermediate tectulum of the mesothoracic neuromere and lower tectulum of the mesothoracic neuromere of both hemispheres (Ehrhardt et al., 2023). It has its soma in a ventral-medial-anterior position in the mesothoracic neuromere (Ehrhardt et al., 2023). It belongs to the 0A hemilineage of the T2 neuromere (Ehrhardt et al., 2023). There is one of these cells per organism (Ehrhardt et al., 2023).
Adult Dh31 neuron with its soma in the dorsal brain and an axon projecting to the corpus allatum (Kurogi et al., 2023). These neurons derive from the larval CA-LP neurons (Kurogi et al., 2023). There are three of these cells per hemisphere (Kurogi et al., 2023). In the female, they are involved in reproductive dormancy (Kurogi et al., 2023). Distinct from the three LP neurons (FBbt:00007432) - different hemibrain body IDs given in Kurogi et al. (2023) supplement. Also present in males, but function not investigated by Kurogi et al. (2023).
Adult Dh31 neuron with its soma in the dorsal brain, medial to CA-LP2, and an axon projecting to the corpus allatum (Kurogi et al., 2023). It is derived from the larval CA-LP1 neuron (Kurogi et al., 2023). There is one of these cells per hemisphere (Kurogi et al., 2023).
Adult Dh31 neuron with its soma in the dorsal brain, lateral to CA-LP1, and an axon projecting to the corpus allatum (Kurogi et al., 2023). These neurons derive from the larval CA-LP2 neurons (Kurogi et al., 2023). There are two of these cells per hemisphere (Kurogi et al., 2023).
Adult local neuron with its soma in the subesophageal zone (Sterne et al., 2021). It has both dendritic and axonal arborization in the gnathal ganglion, with mixed synapse distribution within this region (Sterne et al., 2021). It is mainly ipsilateral, but arborizes close to the midline (Sterne et al., 2021).
Any neuron (FBbt:00005106) that is part of some adult nervous system (FBbt:00003559) and capable of some peptide hormone secretion (GO:0030072) and expresses Capa (FBgn0039722).
Cell that forms the wall of the adult dorsal vessel. There are 84 of these cells per dorsal vessel (Lehmacher et al., 2012).
Thin scattering of muscle fibers that covers the outer layer of the adult proventriculus (cardia). It is one cell thick, except at the anterior end of the proventriculus, where the muscle of the outer layer meets the muscle of the esophagus.
A deep fold in the posterior-most part of the adult foregut epithelium that is formed by the two inner layers of the adult proventriculus (cardia). The space between the two layers of this fold, hilus of the cardia, is filled with longitudinal muscle fibers. The cells of the epithelium are cuboidal to columnar and are vacuolate.
Layer of longitudinal muscle fibers found between the inner and intermediate layers of the adult proventriculus (cardia). These muscle fibers are embedded in an extracellular matrix that fills the available space.
Large glial cell of the adult optic lobe. The larval carpet glial cell migrates inwards during pupal development and its nucleus comes to rest beneath the lamina, proximal to the marginal glial cells (Edwards et al., 2012). There are two of these cells per hemisphere, found on the dorsal and ventral edges of the lamina (Edwards et al., 2012).
Adult motor neuron with its soma in the brain, ventral to the gnathal ganglia. It belongs to the MX12__prim hemilineage. It has presynapses in the ipsilateral inferior posterior slope. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult brain-intrinsic neuron with its soma in the brain, posterior-ventral to the antennal mechanosensory and motor center. It is a putative embryonic-born neuron. It has postsynapses in the contralateral vest. It has presynapses in the contralateral vest. Its predicted neurotransmitter is gaba. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult brain-intrinsic neuron with its soma in the brain, anterior-dorsal to the mushroom body vertical lobe. It belongs to the CREa2_ventral hemilineage. It has postsynapses in the ipsilateral anterior optic tubercle and the ipsilateral superior intermediate protocerebrum. It has presynapses in the ipsilateral superior posterior slope, the ipsilateral lateral accessory lobe and the ipsilateral vest. Its predicted neurotransmitter is acetylcholine. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult brain-intrinsic neuron with its soma in the brain, ventral to the antennal mechanosensory and motor center. It is a putative embryonic-born neuron. It has postsynapses in the ipsilateral flange. It has presynapses in the contralateral flange. Its predicted neurotransmitter is gaba. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult brain-intrinsic neuron with its soma in the brain, ventral to the antennal mechanosensory and motor center. It is a putative embryonic-born neuron. It has postsynapses in the ipsilateral vest, the ipsilateral flange, the ipsilateral inferior posterior slope and the ipsilateral wedge. It has presynapses in the ipsilateral vest, the contralateral vest, the ipsilateral flange, the contralateral flange and the contralateral gorget. Its predicted neurotransmitter is gaba. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).
Adult brain-intrinsic neuron with its soma in the brain, ventral to the antennal mechanosensory and motor center. It is a putative embryonic-born neuron. It has postsynapses in the contralateral vest, the contralateral wedge, the contralateral posterior ventrolateral protocerebrum, the contralateral antennal mechanosensory and motor center and the ipsilateral vest. It has presynapses in the contralateral antennal mechanosensory and motor center, the contralateral antennal lobe, the contralateral vest, the contralateral posterior ventrolateral protocerebrum and the contralateral wedge. Its predicted neurotransmitter is gaba. Uncharacterized putative cell type from Schlegel et al. (2023), based on FlyWire v783 (FAFB) data (Dorkenwald et al., 2023). Soma locations are based on the closest annotated neuropil region. Pre- or post-synapse locations are the fewest regions that collectively contain at least 80 percent of all pre- or post-synapses of these neurons in FlyWire. Neurotransmitter predictions are from Eckstein et al. (2023). Other annotations are based on annotations in FlyWire and are available in the supplemental material of Schlegel et al. (2023).