Zheng Yang, Gao Lin, Wang Gang, Wang Yingtuo, Yang Zi, Wang Xiuyue, Li Tianqi, Dang Chuan, Zhu Ruohan, Wang Jue
The Key Laboratory of Biomedical Information Engineering of Ministry of Education, Institute of Biomedical Engineering, School of Life Science and Technology, Xi'an Jiaotong University, China; National Engineering Research Center of Health Care and Medical Devices, Xi'an Jiaotong University Branch, China.
The Key Laboratory of Biomedical Information Engineering of Ministry of Education, Institute of Biomedical Engineering, School of Life Science and Technology, Xi'an Jiaotong University, China; National Engineering Research Center of Health Care and Medical Devices, Xi'an Jiaotong University Branch, China.
Neuropsychologia. 2016 May;85:199-207. doi: 10.1016/j.neuropsychologia.2016.03.028. Epub 2016 Mar 24.
The mechanisms behind how muscle contractions in one hand influence corticomuscular coherence in the opposite hand are still undetermined. Twenty-two subjects were recruited to finish bimanual and unimanual motor tasks. In the unimanual tasks, subjects performed precision grip using their right hand with visual feedback of exerted forces. The bimanual tasks involved simultaneous finger abduction of their left hand with visual feedback and precision grip of their right hand. They were divided into four conditions according to the two contraction levels of the left-hand muscles and whether visual feedback existed for the right hand. Measures of coherence and power spectrum were calculated from EEG and EMG data and statistically analyzed to identify changes in corticomuscular coupling and oscillatory activity. Results showed that compared with the unimanual task, a significant increase in the mean corticomuscular coherence of the right hand was found when left-hand muscles contracted at 5% of the maximal isometric voluntary contraction (MVC). No significant changes were found when the contraction level was 50% of the MVC. Furthermore, both the increase of muscle contraction levels and the elimination of visual feedback for right hand can significantly decrease the corticomuscular coupling in right hand during bimanual tasks. In summary, the involvement of moderate left-hand muscle contractions resulted in an increase tendency of corticomuscular coherence in right hand while strong left-hand muscle contractions eliminated it. We speculated that the perturbation of activities in one corticospinal tract resulted from the movement of the opposite hand can enhance the corticomuscular coupling when attention distraction is limited.
一只手的肌肉收缩如何影响另一只手的皮质-肌肉连贯性,其背后的机制仍未明确。招募了22名受试者来完成双手和单手运动任务。在单手任务中,受试者用右手进行精确抓握,并能看到所施加力量的视觉反馈。双手任务包括左手同时进行手指外展并伴有视觉反馈,以及右手进行精确抓握。根据左手肌肉的两种收缩水平以及右手是否存在视觉反馈,将他们分为四种情况。从脑电图(EEG)和肌电图(EMG)数据中计算连贯性和功率谱的测量值,并进行统计分析,以确定皮质-肌肉耦合和振荡活动的变化。结果显示,与单手任务相比,当左手肌肉以最大等长自主收缩(MVC)的5%收缩时,右手的平均皮质-肌肉连贯性显著增加。当收缩水平为MVC的50%时,未发现显著变化。此外,在双手任务中,肌肉收缩水平的增加和右手视觉反馈的消除都会显著降低右手的皮质-肌肉耦合。总之,适度的左手肌肉收缩会导致右手皮质-肌肉连贯性有增加的趋势,而强烈的左手肌肉收缩则会消除这种趋势。我们推测,当注意力分散有限时,对侧手的运动所导致的一条皮质脊髓束活动的扰动可以增强皮质-肌肉耦合。