To effectively control their bodies, animals rely on feedback from proprioceptive mechanosensory neurons. In the Drosophila leg, different proprioceptor subtypes monitor joint position, movement direction, and vibration. Here, we investigate how these diverse sensory signals are integrated by central proprioceptive circuits. We find that signals for leg joint position and directional movement converge in second-order neurons, revealing pathways for local feedback control of leg posture. Distinct populations of second-order neurons integrate tibia vibration signals across pairs of legs, suggesting a role in detecting external substrate vibration. In each pathway, the flow of sensory information is dynamically gated and sculpted by inhibition. Overall, our results reveal parallel pathways for processing of internal and external mechanosensory signals, which we propose mediate feedback control of leg movement and vibration sensing, respectively. The existence of a functional connectivity map also provides a resource for interpreting connectomic reconstruction of neural circuits for leg proprioception.
Functional architecture of neural circuits for leg proprioception in Drosophila.
果蝇腿部本体感觉神经回路的功能结构
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作者:Chen Chenghao, Agrawal Sweta, Mark Brandon, Mamiya Akira, Sustar Anne, Phelps Jasper S, Lee Wei-Chung Allen, Dickson Barry J, Card Gwyneth M, Tuthill John C
| 期刊: | Current Biology | 影响因子: | 7.500 |
| 时间: | 2021 | 起止号: | 2021 Dec 6; 31(23):5163-5175 |
| doi: | 10.1016/j.cub.2021.09.035 | 种属: | Drosophila |
| 研究方向: | 神经科学 | ||
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