随时间变化的中枢神经变形和位置的变化,以应对量化和握力
Gabrielle Racine1, Michael W R Holmes2, Aaron M Kociolek1
1School of Physical and Health Education, Nipissing University, North Bay, Ontario, Canada.
概括
中间神经 (MN) 在手部道内重塑和移动,特别是在较低的力量下. 这些神经变化在抓住和捏住时没有完全逆转,当力降低时,这表明一个适应机制.
科学领域:
- 生物力学 生物力学
- 神经科学是一个神经科学.
- 人体解剖学 解剖学 解剖学
背景情况:
- 中间神经 (MN) 必须适应手管道的条件,以防止压力应激.
- 了解神经适应对于缓解诸如手腕道综合征等疾病至关重要.
研究的目的:
- 为了评估中枢神经变形和位置在手力炼期间的变化.
- 调查这些变化在装载和卸载阶段的时间进程.
主要方法:
- 在手掌道的超声波成像在三个手力任务 (肉捏,子捏,动力抓).
- 与超声波数据同步的握力/力测量.
- 分析中枢神经变形和相对于 flexor digitorum superficialis肌的位置,每增加10%的力.
主要成果:
- 在施加力时,中枢神经变得更为圆形,并在背部和部部位移.
- 这些神经变化主要发生在0%至20%的最大自愿力 (MVF) 之间.
- 在卸载阶段,变形和位置变化并没有完全逆转.
结论:
- 中间神经表现出显著的变形和位置变化,以应对抓住和紧的任务.
- 这些适应似乎是手腕道结构的初始重组.
- 变化的不完全逆转表明周围组织的与菌株相关的特征和适应机制.
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