Reconstruction of motor control circuits in adult Drosophila using automated transmission electron microscopy
Author(s) -
Jasper S. Phelps,
David G. C. Hildebrand,
Brett J. Graham,
Aaron T. Kuan,
Logan A. Thomas,
Tri Nguyen,
Julia Buhmann,
Anthony W. Azevedo,
Anne Sustar,
Sweta Agrawal,
Ming-Guan Liu,
Brendan L. Shanny,
Jan Funke,
John C. Tuthill,
Wei-Chung Allen Lee
Publication year - 2021
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2020.12.013
Subject(s) - biology , spinal cord , neuroscience , sensory system , ventral nerve cord , segmentation , drosophila melanogaster , biological neural network , transmission (telecommunications) , computer hardware , computer science , anatomy , artificial intelligence , nervous system , telecommunications , biochemistry , gene
To investigate circuit mechanisms underlying locomotor behavior, we used serial-section electron microscopy (EM) to acquire a synapse-resolution dataset containing the ventral nerve cord (VNC) of an adult female Drosophila melanogaster. To generate this dataset, we developed GridTape, a technology that combines automated serial-section collection with automated high-throughput transmission EM. Using this dataset, we studied neuronal networks that control leg and wing movements by reconstructing all 507 motor neurons that control the limbs. We show that a specific class of leg sensory neurons synapses directly onto motor neurons with the largest-caliber axons on both sides of the body, representing a unique pathway for fast limb control. We provide open access to the dataset and reconstructions registered to a standard atlas to permit matching of cells between EM and light microscopy data. We also provide GridTape instrumentation designs and software to make large-scale EM more accessible and affordable to the scientific community.
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