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research article

Descending neuron population dynamics during odor-evoked and spontaneous limb-dependent behaviors

Aymanns, Florian  
•
Chen, Chin-Lin  
•
Ramdya, Pavan  
October 26, 2022
Elife

Deciphering how the brain regulates motor circuits to control complex behaviors is an important, long-standing challenge in neuroscience. In the fly, Drosophila melanogaster, this is coordinated by a population of similar to 1100 descending neurons (DNs). Activating only a few DNs is known to be sufficient to drive complex behaviors like walking and grooming. However, what additional role the larger population of DNs plays during natural behaviors remains largely unknown. For example, they may modulate core behavioral commands or comprise parallel pathways that are engaged depending on sensory context. We evaluated these possibilities by recording populations of nearly 100 DNs in individual tethered flies while they generated limb-dependent behaviors, including walking and grooming. We found that the largest fraction of recorded DNs encode walking while fewer are active during head grooming and resting. A large fraction of walk-encoding DNs encode turning and far fewer weakly encode speed. Although odor context does not determine which behavior-encoding DNs are recruited, a few DNs encode odors rather than behaviors. Lastly, we illustrate how one can identify individual neurons from DN population recordings by using their spatial, functional, and morphological properties. These results set the stage for a comprehensive, population-level understanding of how the brain's descending signals regulate complex motor actions.

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Type
research article
DOI
10.7554/eLife.81527
Web of Science ID

WOS:000932872700001

Author(s)
Aymanns, Florian  
•
Chen, Chin-Lin  
•
Ramdya, Pavan  
Date Issued

2022-10-26

Publisher

eLIFE SCIENCES PUBL LTD

Published in
Elife
Volume

11

Article Number

e81527

Subjects

Biology

•

Life Sciences & Biomedicine - Other Topics

•

population imaging

•

two-photon microscopy

•

descending neuron

•

walking

•

grooming

•

limb

•

control-circuits

•

locomotor speed

•

brain neurons

•

drosophila

•

walking

•

motor

•

mechanisms

•

projection

•

distinct

•

motion

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
UPRAMDYA  
IMAGING  
Available on Infoscience
March 13, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/195701
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