在双向行走过程中运动适应的神经肌肉基础
bioRxiv : the preprint server for biology
|February 23, 2026
概括
在分带跑步机上双向行走会改变肌肉激活模式,特别是在向后移动的腿部. 步行节奏保持稳定,但肌肉活动的时间和振幅适应新的环境需求.
科学领域:
- 神经科学是一个神经科学.
- 生物力学 生物力学
- 人类运动控制人体运动控制
背景情况:
- 人类的运动是一种动态的运动技能,可以适应环境的变化.
- 分带跑步机研究揭示了对步态适应机制的洞察力.
- 双向步行 (BDW) 涉及跑步带在相反的方向移动,创造不对称的步行需求.
研究的目的:
- 为了研究双向行走 (BDW) 期间的肌肉激活模式.
- 分析非对称步行过程中肌肉活动的时间和幅度特征.
- 了解适应BDW的基础的神经肌肉调整.
主要方法:
- 十二名健康的志愿者参加了一项分带跑步机研究.
- 同时采集地面反应力,关节动力学和表面电肌图 (EMG) 来自肌底 (SOL) 和前 (TA) 肌肉.
- 协议包括前行步行 (FW),BDW,以及一个FW洗期.
主要成果:
- 电磁图显示了双边的反相SOL和TA激活.
- 向后移动的腿的TA在BDW期间显示出长时间的激活,持续到洗.
- 节奏生成保持稳定,而肌肉激活模式 (幅度) 显示了适应性变化.
结论:
- BDW诱导非对称的肌肉激活调整,特别是在模式形成.
- 节奏生成是强大的,但肌肉激活时间和振幅是调制的.
- 这些发现阐明了中央神经系统的策略,以适应新环境条件的移动.
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