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Motor module activation sequence and topography in the spinal cord during air‐stepping in human: Insights into the traveling wave in spinal locomotor circuits

机译:人体踩风过程中脊髓的运动模块激活序列和形态:洞察脊髓运动回路中的行波

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摘要

Coordinated locomotor muscle activity is generated by the spinal central pattern generators (CPGs), which are modulated by peripheral and supraspinal inputs. The CPGs would consist of multiple motor modules generating basic muscle activity, which are distributed rostrocaudally along the spinal cord. To activate the motor modules in proper sequence, rostrocaudally traveling waves of activation in the spinal cord are important mechanisms in the CPGs. The traveling waves of activation have been observed in nonhuman vertebrates. However, they have not yet been confirmed during human locomotion. Although, rostrocaudal wave‐like activations in the spinal cord were observed during walking in humans in a previous study, the propagation shifted rostrally toward the upper lumbar segments at foot contact. Here, using an air stepping task to remove the foot‐contact interactions, we examined whether the traveling wave mechanism exists in the human spinal circuits based on the activation sequence of motor modules and their topography. We measured electromyographic activity of lower leg muscles during the air‐stepping task. Then, we extracted motor modules (i.e., basic patterns of sets of muscle activations: muscle synergies) from the measured muscle activities using nonnegative matrix factorization method. Next, we reconstructed motoneuron (MN) activity from each module activity based on myotomal charts. We identified four types of motor modules from muscle activities during the air‐stepping task. Each motor module represented different sets of synergistic muscle activations. MN clusters innervating each motor module were sequentially activated from the rostral to caudal region in the spinal cord, from the initial flexion to the last extension phase during air‐stepping. The rostrocaudally sequential activation of MN clusters suggests the possibility that rostrocaudally traveling waves exist in human locomotor spinal circuits. The present results advance the understanding of human locomotor control mechanisms, and provide important insights into the evolution of locomotor networks in vertebrates.
机译:协调的运动肌肉活动由脊柱中央模式发生器(CPG)产生,这些发生器由周围和脊髓上输入调节。 CPG将由多个产生基本肌肉活动的运动模块组成,这些运动模块沿脊髓向后尾状分布。为了按正确的顺序激活电动机模块,脊髓中尾向行进的激活波是CPG中的重要机制。在非人类脊椎动物中已经观察到激活的行进波。但是,尚未在人类运动期间证实它们。尽管在先前的研究中,在人类行走过程中观察到脊髓中出现了类似尾脑尾波的激活,但在脚接触时,其传播逐渐向着上腰段转移。在这里,我们使用空气步进任务消除了脚与脚之间的相互作用,我们根据电机模块的激活顺序及其地形,检查了行波机制是否存在于人体的脊髓回路中。我们在踩空气的过程中测量了小腿肌肉的肌电活动。然后,我们使用非负矩阵分解方法从测量的肌肉活动中提取了运动模块(即,一组肌肉激活的基本模式:肌肉协同作用)。接下来,我们基于肌电图从每个模块活动重建了运动神经元(MN)活动。我们从空中踩踏任务中的肌肉活动中识别出四种类型的运动模块。每个运动模块代表不同组的协同肌肉激活。支配每个电机模块的MN簇被依次激活,从步态开始到弯曲的最后一个伸展阶段,从脊髓的延髓到尾状区域。 MN簇的后尾向顺序激活提示在人类运动性脊髓回路中存在后尾向行波。目前的结果提高了对人类运动控制机制的理解,并为脊椎动物运动网络的发展提供了重要的见识。

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