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Neural circuit mechanisms for steering control in walking Drosophila

Aleksandr Rayshubskiy, Stephen L. Holtz, Alexander S. Bates, Quinn X. Vanderbeck, Laia Serratosa Capdevila, Victoria Rockwell, Rachel I. Wilson
doi: https://doi.org/10.1101/2020.04.04.024703
Aleksandr Rayshubskiy
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
3Rowland Institute at Harvard University, Cambridge, MA, USA
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Stephen L. Holtz
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
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Alexander S. Bates
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
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Quinn X. Vanderbeck
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
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Laia Serratosa Capdevila
2Aelysia LTD, Bristol, BS9 3BY UK
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Victoria Rockwell
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
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Rachel I. Wilson
1Department of Neurobiology, Harvard Medical School, Boston, MA, USA
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  • For correspondence: rachel_wilson{at}hms.harvard.edu
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Abstract

Orienting behaviors provide a continuous stream of information about an organism’s sensory experiences and plans. Thus, to study the links between sensation and action, it is useful to identify the neurons in the brain that control orienting behaviors. Here we describe descending neurons in the Drosophila brain that predict and influence orientation (heading) during walking. We show that these cells have specialized functions: whereas one cell type predicts sustained low-gain steering, the other predicts transient high-gain steering. These latter cells integrate internally-directed steering signals from the head direction system with stimulus-directed steering signals from multimodal sensory pathways. The inputs to these cells are organized to produce “see-saw” steering commands, so that increasing output from one brain hemisphere is accompanied by decreasing output from the other hemisphere. Together, our results show that internal and external drives are integrated to produce descending motor commands with different timescales, for flexible and precise control of an organism’s orientation in space.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • This revision contains one new data component, namely Figure S8, which confirms the expected pattern of GtACR1 expression in both DNa02 and DNa01. We have also made text edits to the Results, Discussion, Figure Legends, and Methods to address reviewers' questions.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted March 30, 2025.
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Neural circuit mechanisms for steering control in walking Drosophila
Aleksandr Rayshubskiy, Stephen L. Holtz, Alexander S. Bates, Quinn X. Vanderbeck, Laia Serratosa Capdevila, Victoria Rockwell, Rachel I. Wilson
bioRxiv 2020.04.04.024703; doi: https://doi.org/10.1101/2020.04.04.024703
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Neural circuit mechanisms for steering control in walking Drosophila
Aleksandr Rayshubskiy, Stephen L. Holtz, Alexander S. Bates, Quinn X. Vanderbeck, Laia Serratosa Capdevila, Victoria Rockwell, Rachel I. Wilson
bioRxiv 2020.04.04.024703; doi: https://doi.org/10.1101/2020.04.04.024703

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