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手指叩击疲劳任务对 M1 皮层内抑制和肌肉中枢驱动的影响。

Effects of a Finger Tapping Fatiguing Task on M1-Intracortical Inhibition and Central Drive to the Muscle.

机构信息

Universidade da Coruña, NEUROcom (Neuroscience and Motor Control Group) and Biomedical Institute of A Coruña (INIBIC), Department of Biomedical Sciences, Medicine and Physiotherapy-INEF Galicia, A Coruña, Spain.

Centro de Estimulación Cerebral de Galicia, A Coruña, Spain.

出版信息

Sci Rep. 2018 Jun 19;8(1):9326. doi: 10.1038/s41598-018-27691-9.

Abstract

The central drive to the muscle reduces when muscle force wanes during sustained MVC, and this is generally considered the neurophysiological footprint of central fatigue. The question is if force loss and the failure of central drive to the muscle are responsible mechanisms of fatigue induced by un-resisted repetitive movements. In various experimental blocks, we validated a 3D-printed hand-fixation system permitting the execution of finger-tapping and maximal voluntary contractions (MVC). Subsequently, we checked the suitability of the system to test the level of central drive to the muscle and developed an algorithm to test it at the MVC force plateau. Our main results show that the maximum rate of finger-tapping dropped at 30 s, while the excitability of inhibitory M1-intracortical circuits and corticospinal excitability increased (all by approximately 15%). Furthermore, values obtained immediately after finger-tapping showed that MVC force and the level of central drive to the muscle remained unchanged. Our data suggest that force and central drive to the muscle are not determinants of fatigue induced by short-lasting un-resisted repetitive finger movements, even in the presence of increased inhibition of the motor cortex. According to literature, this profile might be different in longer-lasting, more complex and/or resisted repetitive movements.

摘要

在持续 MVC 期间肌肉力量减弱时,肌肉的中央驱动力会降低,这通常被认为是中枢疲劳的神经生理学特征。问题是,力量损失和肌肉中枢驱动的衰竭是否是无抵抗重复运动引起疲劳的机制。在各种实验中,我们验证了一种允许执行手指敲击和最大自主收缩 (MVC) 的 3D 打印手固定系统。随后,我们检查了该系统测试肌肉中枢驱动水平的适用性,并开发了一种在 MVC 力平台上测试它的算法。我们的主要结果表明,手指敲击的最大速度在 30 秒时下降,而抑制性 M1 皮质内回路的兴奋性和皮质脊髓兴奋性增加(均约为 15%)。此外,手指敲击后立即获得的值表明 MVC 力量和肌肉中枢驱动水平保持不变。我们的数据表明,即使在运动皮层抑制增加的情况下,力量和肌肉中枢驱动也不是由短暂的无抵抗重复手指运动引起的疲劳的决定因素。根据文献,这种模式在持续时间更长、更复杂和/或有抵抗的重复运动中可能不同。

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