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在地面行走过程中,肌肉对上半身内外侧角动量扰动的反应。

Muscular responses to upper body mediolateral angular momentum perturbations during overground walking.

作者信息

Mohseni Omid, Berry Andrew, Schumacher Christian, Seyfarth Andre, Vallery Heike, Sharbafi Maziar A

机构信息

Lauflabor Locomotion Laboratory, Institute of Sport Science, Centre for Cognitive Science, Technical University of Darmstadt, Darmstadt, Germany.

Measurement and Sensor Technology Group, Department of Electrical Engineering and Information Technology, Technical University of Darmstadt, Darmstadt, Germany.

出版信息

Front Bioeng Biotechnol. 2025 Apr 11;13:1509090. doi: 10.3389/fbioe.2025.1509090. eCollection 2025.

Abstract

Adaptive motor control and seamless coordination of muscle actions in response to external perturbations are crucial to maintaining balance during bipedal locomotion. There is an ongoing debate about the specific roles of individual muscles and underlying neural control circuitry that humans employ to maintain balance in different perturbation scenarios. To advance our understanding of human motor control in perturbation recovery, we conducted a study using a portable Angular Momentum Perturbator (AMP). Unlike other push/pull perturbation systems, the AMP can generate perturbation torques on the upper body while minimizing the perturbing forces at the center of mass. In this study, ten participants experienced trunk perturbations during either the mid-stance or touchdown phase in two frontal plane directions (ipsilateral and contralateral). We recorded and analyzed the electromyography (EMG) activity of eight lower-limb muscles from both legs to examine muscular responses in different phases and directions. Based on our findings, individuals primarily employ long-latency hip strategies to effectively counteract perturbation torques, with the occasional use of ankle strategies. Furthermore, it was found that proximal muscles, particularly the biarticular Rectus Femoris, consistently exhibited higher activation levels than other muscles. Additionally, in instances where a statistically significant difference was noted, we observed that the fastest reactions generally stem from muscles in close proximity to the perturbation site. However, the temporal sequence of muscles' activation depends on the timing and direction of the perturbation. These findings enhance reflex response modeling, aiding the development of simulation tools for accurately predicting exogenous disturbances. Additionally, they hold the potential to shape the development of assistive devices, with implications for clinical interventions, particularly for the elderly.

摘要

适应性运动控制以及肌肉动作针对外部扰动的无缝协调对于双足行走过程中保持平衡至关重要。关于人类在不同扰动场景下用于维持平衡的单个肌肉和潜在神经控制回路的具体作用,目前仍存在争议。为了加深我们对扰动恢复中人类运动控制的理解,我们使用便携式角动量扰动器(AMP)进行了一项研究。与其他推/拉扰动系统不同,AMP可以在上半身产生扰动扭矩,同时将质心处的扰动力降至最低。在这项研究中,十名参与者在两个额面方向(同侧和对侧)的站立中期或触地阶段经历了躯干扰动。我们记录并分析了双腿八块下肢肌肉的肌电图(EMG)活动,以检查不同阶段和方向的肌肉反应。根据我们的研究结果,个体主要采用长潜伏期髋部策略来有效抵消扰动扭矩,偶尔也会使用踝部策略。此外,发现近端肌肉,特别是双关节股直肌,始终表现出比其他肌肉更高的激活水平。此外,在观察到统计学显著差异的情况下,我们发现最快的反应通常来自靠近扰动部位的肌肉。然而,肌肉激活的时间顺序取决于扰动的时间和方向。这些发现增强了反射反应建模,有助于开发用于准确预测外源性干扰的模拟工具。此外,它们有可能影响辅助设备的开发,对临床干预,特别是对老年人具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e11d/12021904/a2583bc05cb0/fbioe-13-1509090-g001.jpg

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