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Regulation of forward and backward locomotion through intersegmental feedback circuits in Drosophila larvae

机译:通过果蝇幼虫的节间反馈回路调节向前和向后的运动

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摘要

Animal locomotion requires spatiotemporally coordinated contraction of muscles throughout the body. Here, we investigate how contractions of antagonistic groups of muscles are intersegmentally coordinated during bidirectional crawling of Drosophila larvae. We identify two pairs of higher-order premotor excitatory interneurons present in each abdominal neuromere that intersegmentally provide feedback to the adjacent neuromere during motor propagation. The two feedback neuron pairs are differentially active during either forward or backward locomotion but commonly target a group of premotor interneurons that together provide excitatory inputs to transverse muscles and inhibitory inputs to the antagonistic longitudinal muscles. Inhibition of either feedback neuron pair compromises contraction of transverse muscles in a direction-specific manner. Our results suggest that the intersegmental feedback neurons coordinate contraction of synergistic muscles by acting as delay circuits representing the phase lag between segments. The identified circuit architecture also shows how bidirectional motor networks could be economically embedded in the nervous system.
机译:动物的运动需要整个身体的肌肉时空协调收缩。在这里,我们调查果蝇的幼虫的双向爬行过程中肌肉的拮抗组的收缩是节间协调的。我们确定每个腹部神经绒毛中存在两对高阶运动前兴奋性神经元,它们在运动传播过程中节段性地向邻近的神经绒毛提供反馈。这两个反馈神经元对在向前或向后运动过程中具有不同的活动性,但通常以一组运动前神经元为目标,这些神经元一起为横肌提供兴奋性输入,而为对立纵肌提供抑制性输入。任一反馈神经元对的抑制都会以特定于方向的方式损害横肌的收缩。我们的结果表明,节间反馈神经元通过充当代表各节之间的相位滞后的延迟电路来协调协同肌肉的收缩。所识别的电路架构还显示了双向电动机网络如何经济地嵌入神经系统。

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