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首页> 外文期刊>Experimental Brain Research >Changes in the referent body location and configuration may underlie human gait, as confirmed by findings of multi-muscle activity minimizations and phase resetting.
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Changes in the referent body location and configuration may underlie human gait, as confirmed by findings of multi-muscle activity minimizations and phase resetting.

机译:被多步肌肉活动最小化和相位重置的结果证实,目标人体位置和配置的变化可能是人类步态的基础。

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摘要

Locomotion is presumably guided by feed-forward shifts in the referent body location in the desired direction in the environment. We propose that the difference between the actual and the referent body locations is transmitted to neurons that virtually diminish this difference by appropriately changing the referent body configuration, i.e. the body posture at which muscles reach their recruitment thresholds. Muscles are activated depending on the gap between the actual and the referent body configurations resulting in a step being made to minimize this gap. This hypothesis implies that the actual and the referent leg configurations can match each other at certain phases of the gait cycle, resulting in minimization of leg muscle activity. We found several leg configurations at which EMG minima occurred, both during forward and backward gait. It was also found that the set of limb configurations associated with EMG minima can be changed by modifying the pattern of forward and backward gait. Our hypothesis predicts that, in response to perturbations of gait, the rate of shifts in the referent body location can temporarily be changed to avoid falling. The rate influences the phase of rhythmic limb movements during gait. Therefore, following the change in the rate of the referent body location, the whole gait pattern, for all four limbs, will irreversibly be shifted in time (long-lasting and global phase resetting) with only transient changes in the gait speed, swing and stance timing and cycle duration. Aside from transient changes in the duration of the swing and/or stance phase in response to perturbation, few previous studies have documented long-lasting and global phase resetting of human gait in response to perturbation. Such resetting was a robust finding in our study. By confirming the notion that feed-forward changes in the referent body location and configuration underlie human locomotion, this study solves the classical problem in the relationship between stability of posture and gait and advances the understanding of how human locomotion involves the whole body and is accomplished in a spatial frame of reference associated with the environment.
机译:运动大概是由参考物体位置在环境中所需方向上的前馈位移引导的。我们建议将实际位置和参考身体位置之间的差异传递给神经元,该神经元实际上通过适当更改参考身体的配置(即,肌肉达到其募集阈值的身体姿势)来减小这种差异。根据实际和参考人体配置之间的间隙来激活肌肉,从而导致执行使该间隙最小化的步骤。该假设表明,实际的腿部和参考的腿部构造可以在步态周期的某些阶段相互匹配,从而使腿部肌肉的活动最小化。我们发现在前向和后向步态都发生了肌电图最小值的几种腿部形态。还发现,可以通过修改前进和后退步态的模式来改变与肌电图最小值相关的四肢构形。我们的假设预测,响应于步态的扰动,目标身体位置的移动速率可以暂时更改以避免跌落。该速率影响步态期间有节奏的肢体运动的阶段。因此,随着参照体位置速率的变化,所有四个肢体的整个步态将在时间上不可逆转地变化(持久和全局相位重置),而步态速度,摆动和站立时间和周期持续时间。除了摆动引起的摆动和/或姿势阶段持续时间的短暂变化外,很少有先前的研究记录了人体摆动引起的步态的持久和整体阶段重置。在我们的研究中,这种复位是一个可靠的发现。通过确认前体人体位置和构型的前馈变化是人体运动的基础,本研究解决了姿势稳定性和步态之间关系中的经典问题,并加深了对人体运动如何影响整个身体的理解并完成了这一工作。在与环境相关的空间参照系中。

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