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Human limb vibration and neuromuscular control.

机译:人肢振动和神经肌肉控制。

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摘要

Mechanical loading can modulate tissue plasticity and has potential applications in rehabilitation science and regenerative medicine. To safely and effectively introduce mechanical loads to human cells, tissues, and the entire body, we need to understand the optimal loading environment to promote growth and health. The purpose of this research was 1) to validate a limb vibration and compression system; 2) to determine the effect of limb vibration on neural excitability measured by sub-threshold TMS-conditioned H-reflexes and supra-threshold TMS; 3) to determine changes in center of pressure, muscle activity, and kinematics during a postural task following limb vibration; 4) to determine the effect of vibration on accuracy and long latency responses during a weight bearing visuomotor task.;The major findings of this research are 1) the mechanical system presented in the manuscript can deliver limb vibration and compression reliably, accurate, and safely to human tissue; 2) sub-threshold cortical stimulation reduces the vibration-induced presynaptic inhibition of the H-reflex. This reduction cannot be attributed to an increase in cortical excitability during limb vibration because the MEP remains unchanged with limb vibration; 3) limb vibration altered the soleus and tibialis EMG activity during a postural control task. The vibration-induced increase in muscle activity was associated with unchanged center of pressure variability and reduced center of pressure complexity; 4) healthy individuals were able to accommodate extraneous afferent information due to the vibration interventions They maintained similar levels of accuracy of a visuomotor tracking task and unchanged long latency responses during an unexpected perturbation.
机译:机械负荷可以调节组织可塑性,并在康复科学和再生医学中具有潜在的应用。为了安全有效地向人体细胞,组织和整个身体引入机械负荷,我们需要了解最佳的负荷环境以促进生长和健康。这项研究的目的是:1)验证肢体振动和压缩系统; 2)确定肢体振动对通过亚阈值TMS条件的H反射和超阈值TMS测量的神经兴奋性的影响; 3)确定肢体振动后的姿势任务期间压力中心,肌肉活动和运动学的变化; 4)确定振动对负重负重运动过程中准确性和长时延响应的影响。;这项研究的主要发现是1)手稿中提出的机械系统可以可靠,准确和安全地传递肢体振动和压缩对人体组织; 2)亚阈值皮层刺激减少了H反射的振动诱发的突触前抑制。这种降低不能归因于肢体振动期间皮质兴奋性的增加,因为MEP随肢体振动保持不变。 3)肢体振动改变了姿势控制任务中的比目鱼肌和胫骨肌电活动。振动引起的肌肉活动增加与压力中心的不变性和压力中心的复杂性降低有关。 4)健康的个体由于振动干预而能够容纳无关的传入信息,他们在视觉运动跟踪任务中保持了相似的准确性水平,并且在意外的扰动期间保持了长时延响应不变。

著录项

  • 作者

    McHenry, Colleen Louise.;

  • 作者单位

    The University of Iowa.;

  • 授予单位 The University of Iowa.;
  • 学科 Physical therapy.;Health sciences.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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