Chen Xiaoling, Shen Tingting, Hao Yingying, Zhang Jinyuan, Xie Ping
Key Laboratory of Measurement Technology and Instrumentation of Hebei Province, Institute of Electric Engineering, Yanshan University, Qinhuangdao, Hebei China.
Key Laboratory of Intelligent Rehabilitation and Neuromodulation of Hebei Province, Institute of Electric Engineering, Yanshan University, Qinhuangdao, Hebei China.
Cogn Neurodyn. 2024 Dec;18(6):3727-3740. doi: 10.1007/s11571-024-10157-2. Epub 2024 Aug 6.
Functional corticomuscular coupling (FCMC), a phenomenon describing the information interaction between the cortex and muscles, plays an important role in assessing hand movements. However, related studies mainly focused on specific actions by one-to-one mapping between the brain and muscles, ignoring the global synchronization across the motor system. Little research has been done on the FCMC difference between the brain and different muscle groups in terms of precise grip tasks. This study combined the maximum information coefficient (MIC) and the S estimation method and constructed a multivariate global synchronization index (MGSI) to measure the FCMC by analyzing the multichannel electroencephalogram (EEG) and electromyogram (EMG) during precise grip tasks. Both signals were collected from 12 healthy subjects while performing different weight object tasks. Our results on Hilbert-Huang spectral entropy (HHSE) of signals showed differences in task stages in both (13-30 Hz) and (31-45 Hz) bands. The weight difference was reflected in the HHSE of channel CP5 and muscles at both ends of the upper limb. The one-to-one mapping with MIC between EEG and the muscle pair AD-FDI showed larger MIC values than the muscle pair B-CED; the same trend was seen on the MGSI values. However, the difference in weight of static tasks was not significant. Both MGSI values and the connect ratio of EEG were related to HHSE values. This work investigated the changes in the cortex and muscles during precise grip tasks from different perspectives, contributing to a better understanding of human motor control.
功能性皮质-肌肉耦合(FCMC)是一种描述皮质与肌肉之间信息交互的现象,在评估手部运动中起着重要作用。然而,相关研究主要集中在大脑与肌肉之间的一对一映射所对应的特定动作上,而忽略了整个运动系统的全局同步。关于精确抓握任务中大脑与不同肌肉群之间的FCMC差异,目前的研究较少。本研究结合最大信息系数(MIC)和S估计方法,通过分析精确抓握任务期间的多通道脑电图(EEG)和肌电图(EMG),构建了一个多变量全局同步指数(MGSI)来测量FCMC。在12名健康受试者执行不同重量物体任务时收集了这两种信号。我们对信号的希尔伯特-黄谱熵(HHSE)的研究结果表明,在13 - 30赫兹和31 - 45赫兹频段的任务阶段均存在差异。重量差异反映在通道CP5以及上肢两端肌肉的HHSE上。EEG与肌肉对AD - FDI之间基于MIC的一对一映射显示出比肌肉对B - CED更大的MIC值;MGSI值也呈现相同趋势。然而,静态任务中重量的差异并不显著。MGSI值和EEG的连接比率均与HHSE值相关。这项工作从不同角度研究了精确抓握任务期间皮质和肌肉的变化,有助于更好地理解人类运动控制。