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脊髓控制后退运动。

The Spinal Control of Backward Locomotion.

机构信息

Department of Pharmacology-Physiology, Faculty of Medicine and Health Sciences, Université de Sherbrooke, Sherbrooke, Quebec J1H 5N4, Canada.

School of Biological Sciences, Georgia Institute of Technology, Atlanta, Georgia 30332.

出版信息

J Neurosci. 2021 Jan 27;41(4):630-647. doi: 10.1523/JNEUROSCI.0816-20.2020. Epub 2020 Nov 25.

Abstract

Animal locomotion requires changing direction, from forward to backward. Here, we tested the hypothesis that sensorimotor circuits within the spinal cord generate backward locomotion and adjust it to task demands. We collected kinematic and electromyography (EMG) data during forward and backward locomotion at different treadmill speeds before and after complete spinal transection in six adult cats (three males and three females). After spinal transection, five/six cats performed backward locomotion, which required tonic somatosensory input in the form of perineal stimulation. One spinal cat performed forward locomotion but not backward locomotion while two others stepped backward but not forward. Spatiotemporal adjustments to increasing speed were similar in intact and spinal cats during backward locomotion and strategies were similar to forward locomotion, with shorter cycle and stance durations and longer stride lengths. Patterns of muscle activations, including muscle synergies, were similar for forward and backward locomotion in spinal cats. Indeed, we identified five muscle synergies that were similar during forward and backward locomotion. Lastly, spinal cats also stepped backward on a split-belt treadmill, with the left and right hindlimbs stepping at different speeds. Therefore, our results show that spinal sensorimotor circuits generate backward locomotion but require additional excitability compared with forward locomotion. Similar strategies for speed modulation and similar patterns of muscle activations and muscle synergies during forward and backward locomotion are consistent with a shared spinal locomotor network, with sensory feedback from the limbs controlling the direction. Animal locomotion requires changing direction, including forward, sideways and backward. This paper shows that the center controlling locomotion within the spinal cord can produce a backward pattern when instructed by sensory signals from the limbs. However, the spinal locomotor network requires greater excitability to produce backward locomotion compared with forward locomotion. The paper also shows that the spinal network controlling locomotion in the forward direction also controls locomotion in the backward direction.

摘要

动物的运动需要改变方向,包括向前、向侧和向后。在这里,我们测试了一个假设,即脊髓内的感觉运动回路产生向后的运动,并根据任务需求进行调整。我们在 6 只成年猫(3 只雄性和 3 只雌性)完全脊髓横切前后,在不同跑步机速度下收集向前和向后运动的运动学和肌电图(EMG)数据。在脊髓横切后,5/6 只猫进行了向后运动,这需要通过会阴刺激的形式提供紧张的感觉输入。一只脊髓猫进行了向前运动,但不能进行向后运动,而另外两只则向后而不是向前迈步。在向后运动中,完整和脊髓猫的速度增加的时空调整相似,策略也与向前运动相似,具有更短的周期和站立持续时间以及更长的步幅。在脊髓猫中,向前和向后运动的肌肉激活模式,包括肌肉协同作用,相似。事实上,我们确定了五个在向前和向后运动中相似的肌肉协同作用。最后,脊髓猫也在分裂带跑步机上向后迈步,左、右后肢以不同的速度迈步。因此,我们的结果表明,脊髓感觉运动回路产生向后运动,但与向前运动相比需要额外的兴奋性。向前和向后运动时速度调节的相似策略以及肌肉激活和肌肉协同作用的相似模式与共享的脊髓运动网络一致,来自四肢的感觉反馈控制着运动的方向。动物的运动需要改变方向,包括向前、向侧和向后。本文表明,当受到来自四肢的感觉信号的指示时,脊髓内控制运动的中枢可以产生向后的运动模式。然而,与向前运动相比,脊髓运动网络产生向后运动需要更大的兴奋性。该论文还表明,控制向前运动的脊髓网络也控制着向后运动。

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J Neurosci. 2021 Jan 27;41(4):630-647. doi: 10.1523/JNEUROSCI.0816-20.2020. Epub 2020 Nov 25.

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