[站立平衡时神经肌肉电刺激对皮质肌肉偶联的影响分析]。

Q4 Medicine
Weijie Ke, Zhizeng Luo
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引用次数: 0

摘要

神经肌肉电刺激(NMES)已被证实具有促进人体平衡的作用,但其对运动能力影响的研究主要集中在外部物理分析上,对内在神经调节机制的分析较少。本研究首次探讨了NMES对站立平衡时皮质活动和皮质-肌肉功能耦合(CMFC)的影响。12名健康受试者接受双侧NMES训练,每次训练包括60次电致等长收缩。分别在刺激前、刺激后2周和刺激后4周采集足底脑电图(EEG)、肌电图(EMG)和压力中心(COP)信号。结果表明,NMES训练提高了受试者站立平衡时的姿势稳定性。此外,基于肌电功率谱密度(PSD)定义κ频带,计算脑肌电时频最大信息系数(TFMIC)。结果发现,NMES增强了皮层与下肢肌肉之间的功能连通性,刺激后β-κ和γ-κ频段CMFC有不同程度的增加。此外,训练后的脑电信号样本熵(SE)也有所增加。本研究结果证实,NMES训练可以增强站立平衡时的CMFC和大脑激活。本研究从生理电信号的角度,验证了NMES对平衡训练的有效性,为NMES的训练效果提供了客观的评价指标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Analysis of the effect of neuromuscular electrical stimulation on corticomuscular coupling during standing balance].

Neuromuscular electrical stimulation (NMES) has been proven to promote human balance, but research on its impact on motor ability mainly focuses on external physical analysis, with little analysis on the intrinsic neural regulatory mechanisms. This study, for the first time, investigated the effects of NMES on cortical activity and cortico-muscular functional coupling (CMFC) during standing balance. Twelve healthy subjects were recruited in bilateral NMES training, with each session consisting of 60 electrically induced isometric contractions. Electroencephalogram (EEG) signals, electromyogram (EMG) signals, and center of pressure (COP) signals of the foot sole were collected before stimulation, two weeks after stimulation, and four weeks after stimulation while the subjects maintained standing balance. The results showed that NMES training improved subjects' postural stability during standing balance. Additionally, based on the EMG power spectral density (PSD), the κ frequency band was defined, and EEG-EMG time-frequency maximal information coefficients (TFMIC) were calculated. It was found that NMES enhanced functional connectivity between the cortex and lower limb muscles, with varying degrees of increase in β-κ and γ-κ frequency band CMFC after stimulation. Furthermore, sample entropy (SE) of EEG signals also increased after training. The results of this study confirm that NMES training can enhance CMFC and brain activation during standing balance. This study, from the perspective of physiological electrical signals, validates the effectiveness of NMES for balance training and provides objective assessment metrics for the training effects of NMES.

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来源期刊
生物医学工程学杂志
生物医学工程学杂志 Medicine-Medicine (all)
CiteScore
0.80
自引率
0.00%
发文量
4868
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