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Cortical and Spinal Excitability during and after Lengthening Contractions of the Human Plantar Flexor Muscles Performed with Maximal Voluntary Effort

机译:皮质脊髓兴奋时用最大志愿行动进行的人力跖屈肌肌肉的收缩加长后

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摘要

This study was designed to investigate the sites of potential specific modulations in the neural control of lengthening and subsequent isometric maximal voluntary contractions (MVCs) versus purely isometric MVCs of the plantar flexor muscles, when there is enhanced torque during and following stretch. Ankle joint torque during maximum voluntary plantar flexion was measured by a dynamometer when subjects (n = 10) lay prone on a bench with the right ankle tightly strapped to a foot-plate. Neural control was analysed by comparing soleus motor responses to electrical nerve stimulation (M-wave, V-wave), electrical stimulation of the cervicomedullary junction (CMEP) and transcranial magnetic stimulation of the motor cortex (MEP). Enhanced torque of 17±8% and 9±8% was found during and 2.5–3 s after lengthening MVCs, respectively. Cortical and spinal responsiveness was similar to that in isometric conditions during the lengthening MVCs, as shown by unchanged MEPs, CMEPs and V-waves, suggesting that the major voluntary motor pathways are not subject to substantial inhibition. Following the lengthening MVCs, enhanced torque was accompanied by larger MEPs (p≤0.05) and a trend to greater V-waves (p≤0.1). In combination with stable CMEPs, increased MEPs suggest an increase in cortical excitability, and enlarged V-waves indicate greater motoneuronal output or increased stretch reflex excitability. The new results illustrate that neuromotor pathways are altered after lengthening MVCs suggesting that the underlying mechanisms of the enhanced torque are not purely mechanical in nature.
机译:这项研究旨在调查在伸展过程中和之后的扭矩增加时,足底屈肌的延长和随后的等距最大自愿收缩(MVC)与纯等距MVC的神经控制中潜在的特定调节位点。当受试者(n = 10)俯卧在长凳上,右脚踝紧紧绑在脚板上时,用测力计测量最大自愿plant屈时的踝关节扭矩。通过比较比目鱼肌对电神经刺激(M波,V波),颈髓髓交界处的电刺激(CMEP)和经颅皮运动皮层的磁刺激(MEP)的运动来分析神经控制。在延长MVC的过程中和2.5–3 s内分别发现了17±8%和9±8%的增强扭矩。皮层和脊髓的反应性与MVC延长过程中的等轴测条件相似,如未改变的MEP,CMEP和V波所示,表明主要的自发性运动途径未受到实质性抑制。随着MVC的增加,扭矩增加,同时MEP增大(p≤0.05),并且V波趋势增大(p≤0.1)。与稳定的CMEP结合使用时,增加的MEP表示皮质兴奋性增加,而增大的V波则表明更大的动脑神经输出或拉伸反射兴奋性增加。新的结果表明,延长MVC后神经运动途径发生改变,这表明增强扭矩的潜在机制本质上并非纯粹是机械的。

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