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Mechanosensory neurons control the timing of spinal microcircuit selection during locomotion

机译:机械感觉神经元控制运动过程中脊柱微电路选择的时间

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Despite numerous physiological studies about reflexes in the spinal cord, the contribution of mechanosensory feedback to active locomotion and the nature of underlying spinal circuits remains elusive. Here we investigate how mechanosensory feedback shapes active locomotion in a genetic model organism exhibiting simple locomotion—the zebrafish larva. We show that mechanosensory feedback enhances the recruitment of motor pools during active locomotion. Furthermore, we demonstrate that inputs from mechanosensory neurons increase locomotor speed by prolonging fast swimming at the expense of slow swimming during stereotyped acoustic escape responses. This effect could be mediated by distinct mechanosensory neurons. In the spinal cord, we show that connections compatible with monosynaptic inputs from mechanosensory Rohon-Beard neurons onto ipsilateral V2a interneurons selectively recruited at high speed can contribute to the observed enhancement of speed. Altogether, our study reveals the basic principles and a circuit diagram enabling speed modulation by mechanosensory feedback in the vertebrate spinal cord.
机译:尽管对脊髓反射进行了大量的生理学研究,但机械感觉反馈对主动运动的贡献以及潜在的脊髓回路的本质仍然难以捉摸。在这里,我们研究了机械感官反馈如何在表现出简单运动的遗传模型生物(斑马鱼幼虫)中塑造主动运动。我们显示机械感官反馈增强主动运动期间运动池的募集。此外,我们证明了机械感官神经元的输入通过延长快速游泳而增加了运动速度,但在刻板的声逸反应中却以缓慢游泳为代价。此作用可能由不同的机械感觉神经元介导。在脊髓中,我们显示出与机械感觉性Rohon-Beard神经元的单突触输入兼容的,选择性地高速募集的同侧V2a中间神经元的连接可以有助于观察到的速度增强。总之,我们的研究揭示了基本原理和电路图,该电路图通过脊椎动物脊髓中的机械感官反馈来实现速度调制。

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