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Contribution of afferent feedback and descending drive to human hopping

机译:传入反馈和递减驱动力对人类跳跃的贡献

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摘要

During hopping an early burst can be observed in the EMG from the soleus muscle starting about 45 ms after touch-down. It may be speculated that this early EMG burst is a stretch reflex response superimposed on activity from a supra-spinal origin. We hypothesised that if a stretch reflex indeed contributes to the early EMG burst, then advancing or delaying the touch-down without the subject's knowledge should similarly advance or delay the burst. This was indeed the case when touch-down was advanced or delayed by shifting the height of a programmable platform up or down between two hops and this resulted in a correspondent shift of the early EMG burst. Our second hypothesis was that the motor cortex contributes to the first EMG burst during hopping. If so, inhibition of the motor cortex would reduce the magnitude of the burst. By applying a low-intensity magnetic stimulus it was possible to inhibit the motor cortex and this resulted in a suppression of the early EMG burst. These results suggest that sensory feedback and descending drive from the motor cortex are integrated to drive the motor neuron pool during the early EMG burst in hopping. Thus, simple reflexes work in concert with higher order structures to produce this repetitive movement.
机译:在跳动过程中,可以在接地后约45毫秒开始从比目鱼肌中观察到EMG中的早期爆发。可以推测,这种早期的EMG爆发是叠加在源自脊髓上的活动上的拉伸反射反应。我们假设,如果反射反射确实有助于早期EMG猝发,则在受试者不知情的情况下提前或延迟触地也应类似地提前或延迟猝发。通过在两跳之间上移或下移可编程平台的高度来提前或延迟触地,确实是这种情况,这导致了早期EMG突发的相应偏移。我们的第二个假设是运动皮层是跳跃过程中第一个EMG爆发的原因。如果是这样,运动皮层的抑制将减少突发的幅度。通过施加低强度的磁刺激,可以抑制运动皮层,从而可以抑制早期的EMG爆发。这些结果表明,在跳动的早期EMG爆发期间,运动反馈和运动皮层的下降驱动被整合以驱动运动神经元池。因此,简单的反射与更高阶的结构协同工作以产生这种重复运动。

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