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Measurement of voluntary activation of fresh and fatigued human muscles using transcranial magnetic stimulation

机译:使用经颅磁刺激测量新鲜和疲劳的人体肌肉的主动激活

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摘要

Recently, transcranial magnetic stimulation of the motor cortex (TMS) revealed impaired voluntary activation of muscles during maximal efforts. Hence, we evaluated its use as a measure of voluntary activation over a range of contraction strengths in both fresh and fatigued muscles, and compared it with standard twitch interpolation using nerve stimulation. Subjects contracted the elbow flexors isometrically while force and EMG from biceps and triceps were recorded. In one study, eight subjects made submaximal and maximal test contractions with rests to minimise fatigue. In the second study, eight subjects made sustained maximal contractions to reduce force to 60 % of the initial value, followed by brief test contractions. Force responses were recorded following TMS or electrical stimulation of the biceps motor nerve. In other contractions, EMG responses to TMS (motor evoked potentials, MEPs) or to stimulation at the brachial plexus (maximal M waves, Mmax) were recorded. During contractions of 50 % maximum, TMS elicited large MEPs in biceps (> 90 % Mmax) which decreased in size (to ≈70 % Mmax) with maximal efforts. This suggests that faster firing rates made some motor units effectively refractory. With fatigue, MEPs were also smaller but remained > 70 % Mmax for contractions of 50–100 % maximum. For fresh and fatigued muscle, the superimposed twitch evoked by motor nerve and motor cortex stimulation decreased with increasing contraction strength. For nerve stimulation the relation was curvilinear, and for TMS it was linear for contractions of 50–100 % maximum (r2 = 1.00). Voluntary activation was derived using the expression: (1 – superimposed twitch/resting twitch) × 100. The resting twitch was measured directly for nerve stimulation and for TMS, it was estimated by extrapolation of the linear regression between the twitch and voluntary force. For cortical stimulation, this resulted in a highly linear relation between voluntary activation and force. Furthermore, the estimated activation corresponded well with contraction strength. Using TMS or nerve stimulation, voluntary activation was high during maximal efforts of fresh muscle. With fatigue, both measures revealed reduced voluntary activation (i.e. central fatigue) during maximal efforts. Measured with TMS, this central fatigue accounted for one-quarter of the fall in maximal voluntary force. We conclude that TMS can quantify voluntary activation for fresh or fatigued muscles at forces of 50–100 % maximum. Unlike standard twitch interpolation of the elbow flexors, voluntary activation measured with TMS varies in proportion to voluntary force, it reveals when extra output is available from the motor cortex to increase force, and it elicits force from all relevant synergist muscles.
机译:最近,对运动皮质(TMS)的经颅磁刺激显示,在最大的努力过程中,肌肉的自发激活受损。因此,我们评估了其在新鲜和疲劳肌肉中一系列收缩强度上的自愿激活程度,并将其与使用神经刺激的标准抽搐插值进行了比较。受试者等距收缩肘屈肌,同时记录来自二头肌和三头肌的力和肌电图。在一项研究中,八名受试者进行了次最大和最大测试收缩,并进行了休息,以最大程度地减少疲劳。在第二项研究中,八名受试者进行了持续最大的收缩,以将力降低至初始值的60%,然后进行短暂的测试收缩。在TMS或电刺激二头肌运动神经后记录力反应。在其他收缩中,记录了肌电图对TMS(运动诱发电位,MEP)或对臂丛神经的刺激(最大M波,Mmax)的反应。在最大收缩50%的过程中,TMS在二头肌中引起较大的MEP(> 90%Mmax),而最大的努力使其尺寸减小(至≈70%Mmax)。这表明较快的点火速度使某些马达组件有效地耐火了。疲劳时,MEP也较小,但最大收缩为50-100%时,Mmax保持> 70%。对于新鲜和疲劳的肌肉,运动神经和运动皮层刺激引起的叠加抽搐随着收缩强度的增加而降低。对于神经刺激,该关系是曲线的,而对于TMS,对于最大收缩为50-100%(r 2 = 1.00)的关系,它是线性的。自愿激活的表达方式为:(1 –叠加的抽搐/静息抽搐)×100。静息抽搐直接用于神经刺激和TMS测量,通过外推抽搐与自愿力之间的线性回归来估算。对于皮层刺激,这导致了自愿激活和力量之间的高度线性关系。此外,估计的激活与收缩强度非常吻合。使用TMS或神经刺激,在最大程度地锻炼新鲜肌肉的过程中,自愿激活率很高。对于疲劳,这两种措施都显示出在最大努力下自愿性活动的减少(即中枢疲劳)。用TMS测量,这种中央疲劳占最大自愿力量下降的四分之一。我们得出的结论是,TMS可以量化最大或最大50-100%的力量对新鲜或疲劳肌肉的自愿激活。与标准的肘屈肌抽搐插值不同,TMS测量的自愿激活与自愿力成比例变化,它揭示了运动皮层何时有额外的输出可用来增加力,并从所有相关的协同肌肉中产生力。

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