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A dynamic network involving M1‐S1 SII‐insular medial insular and cingulate cortices controls muscular activity during an isometric contraction reaction time task

机译:一个动态网络包括M1-S1SII-岛内侧岛和扣带状皮层在等距收缩反应时间任务中控制肌肉活动

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摘要

Magnetoencephalographic, electromyographic (EMG), work, and reaction time (RT) were recorded from nine subjects during visually triggered intermittent isometric contractions of the middle finger under two conditions: unloaded and loaded (30% of maximal voluntary contraction). The effect of muscle fatigue was studied over three consecutive periods under both conditions. In the loaded condition, the motor evoked field triggered by the EMG onset decreased with fatigue, whereas movement‐evoked fields (MEFs) increased ( 0.01). Fatigue was demonstrated in the loaded condition, since (i) RT increased due to an increase in the electromechanical delay ( 0.002); (ii) work decreased from Periods 1 to 3 ( 0.005), while (iii) the myoelectric RMS amplitude of both flexor digitorum superficialis and extensor muscles increased ( 0.003) and (iv) during Period 3, the spectral deflection of the EMG median frequency of the FDS muscle decreased ( 0.001). In the unloaded condition and at the beginning of the loaded condition, a parallel network including M1‐S1, posterior SII‐insular, and posterior cingulate cortices accounted for the MEF activities. However, under the effect of fatigue, medial insular and posterior cingulate cortices drove this network. Moreover, changes in the location of insular and M1‐S1 activations were significantly correlated with muscle fatigue (increase of RMS‐EMG; 0.03 and 0.01, respectively). These results demonstrate that a plastic network controls the strength of the motor command as fatigue occurs: sensory information, pain, and exhaustion act through activation of the medial insular and posterior cingulate cortices to decrease the motor command in order to preserve muscle efficiency and integrity. Hum Brain Mapp, 2009. © 2008 Wiley‐Liss, Inc.
机译:在以下两种情况下,从视觉上触发中指的间歇性等距等距收缩,在以下两种情况下记录了九名受试者的磁脑电图,肌电图(EMG),工作和反应时间(RT):未加载和加载(最大自愿收缩的30%)。在两种情况下,连续三个阶段研究了肌肉疲劳的影响。在负载条件下,EMG发作触发的电机诱发磁场随疲劳而减小,而运动诱发磁场(MEF)增大(0.01)。 (i)由于机电延迟(0.002)的增加,RT增加了;在负载条件下,疲劳得以证明。 (ii)工作从第1阶段减少到第3阶段(0.005),而(iii)指浅屈肌和伸肌的肌电RMS幅度增加(0.003),并且(iv)在第3阶段,EMG中值频谱的频谱偏转FDS肌肉的下降(0.001)。在空载情况下和在装载状态开始时,包括M1-S1,后SII-岛状和后扣带状皮质的并行网络是MEF活动的原因。但是,在疲劳的影响下,内侧岛突和后扣带状皮质驱动了该网络。此外,岛突和M1-S1激活位置的改变与肌肉疲劳显着相关(RMS-EMG分别增加; 0.03和0.01)。这些结果表明,在疲劳发生时,塑料网络可控制运动指令的强度:感觉信息,疼痛和疲惫通过激活内侧岛突和后扣带回皮质来减少运动指令,从而保持肌肉效率和完整性。嗡嗡的脑图,2009年。©2008 Wiley-Liss,Inc.

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