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一种在应激状态下捕捉神经肌肉疲劳机制的方法框架。

A Methodological Framework to Capture Neuromuscular Fatigue Mechanisms Under Stress.

作者信息

Tyagi Oshin, Mehta Ranjana K

机构信息

Neuroergonomics Lab, Texas A&M University, Industrial and Systems Engineering, College Station, TX, United States.

出版信息

Front Neuroergon. 2021 Dec 14;2:779069. doi: 10.3389/fnrgo.2021.779069. eCollection 2021.

Abstract

Neuromuscular fatigue is exacerbated under stress and is characterized by shorter endurance time, greater perceived effort, lower force steadiness, and higher electromyographic activity. However, the underlying mechanisms of fatigue under stress are not well-understood. This review investigated existing methods of identifying central mechanisms of neuromuscular fatigue and the potential mechanisms of the influence of stress on neuromuscular fatigue. We found that the influence of stress on the activity of the prefrontal cortex, which are also involved in exercise regulation, may contribute to exacerbated fatigue under stress. We also found that the traditional methods involve the synchronized use of transcranial magnetic stimulation, peripheral nerve stimulation, and electromyography to identify the contribution of supraspinal fatigue, through measures such as voluntary activation, motor evoked potential, and silent period. However, these popular techniques are unable to provide information about neural alterations of the descending drive that may contribute to supraspinal fatigue development. To address this gap, we propose that functional brain imaging techniques, which provide insights on activation and information flow between brain regions, need to be combined with the traditional measures of measuring central fatigue to fully understand the mechanisms behind the influence of stress on fatigue.

摘要

神经肌肉疲劳在压力状态下会加剧,其特征表现为耐力时间缩短、自觉用力程度增加、力量稳定性降低以及肌电图活动增强。然而,压力状态下疲劳产生的潜在机制尚未得到充分理解。本综述研究了现有的识别神经肌肉疲劳中枢机制的方法以及压力对神经肌肉疲劳影响的潜在机制。我们发现,压力对前额叶皮质活动的影响(前额叶皮质也参与运动调节)可能导致压力状态下疲劳加剧。我们还发现,传统方法包括同步使用经颅磁刺激、外周神经刺激和肌电图,通过诸如自主激活、运动诱发电位和静息期等测量手段来确定脊髓上疲劳的作用。然而,这些常用技术无法提供可能导致脊髓上疲劳发展的下行驱动神经改变的信息。为了填补这一空白,我们建议,能够洞察脑区之间激活和信息流的功能性脑成像技术需要与测量中枢疲劳的传统方法相结合,以全面了解压力对疲劳影响背后的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c475/10790877/ca2104b40b6c/fnrgo-02-779069-g0001.jpg

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