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果蝇腿部本体感觉神经回路的功能结构。

Functional architecture of neural circuits for leg proprioception in Drosophila.

机构信息

Department of Physiology and Biophysics, University of Washington, 1705 N.E. Pacific Street, Seattle, WA 98195, USA; Janelia Research Campus, Howard Hughes Medical Institute, 19700 Helix Drive, Ashburn, VA 20147, USA.

Department of Physiology and Biophysics, University of Washington, 1705 N.E. Pacific Street, Seattle, WA 98195, USA.

出版信息

Curr Biol. 2021 Dec 6;31(23):5163-5175.e7. doi: 10.1016/j.cub.2021.09.035. Epub 2021 Oct 11.

Abstract

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.

摘要

为了有效控制身体,动物依赖于本体感觉机械感觉神经元的反馈。在果蝇的腿中,不同的本体感受器亚型监测关节位置、运动方向和振动。在这里,我们研究了这些不同的感觉信号如何被中枢本体感觉回路整合。我们发现,腿部关节位置和运动方向的信号在二级神经元中汇聚,揭示了腿部姿势局部反馈控制的途径。第二级神经元的不同群体在两对腿之间整合胫骨振动信号,这表明它们在检测外部基质振动方面发挥作用。在每条通路上,感觉信息的流动都受到抑制的动态门控和塑造。总的来说,我们的结果揭示了处理内部和外部机械感觉信号的并行途径,我们认为这些途径分别介导腿部运动和振动感知的反馈控制。功能连接图的存在也为解释腿部本体感觉神经回路的连接组重建提供了资源。

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