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Kinematic profiles suggest differential control processes involved in bilateral in-phase and anti-phase movements

机译:运动学曲线表明双边同相和反相运动涉及不同的控制过程

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摘要

In-phase and anti-phase movements represent two basic coordination modes with different characteristics: during in-phase movements, bilateral homologous muscle groups contract synchronously, whereas during anti-phase movements, they contract in an alternating fashion. Previous studies suggested that in-phase movements represent a more stable and preferential bilateral movement template in humans. The current experiment aims at confirming and extending this notion by introducing new empirical measures of spatiotemporal dynamics during performance of a bilateral circle drawing task in an augmented-reality environment. First, we found that anti-phase compared to in-phase movements were performed with higher radial variability, a result that was mainly driven by the non-dominant hand. Second, the coupling of both limbs was higher during in-phase movements, corroborated by a lower inter-limb phase difference and higher inter-limb synchronization. Importantly, the movement acceleration profile between bilateral hands followed an in-phase relationship during in-phase movements, while no specific relationship was found in anti-phase condition. These spatiotemporal relationships between hands support the hypothesis that differential neural processes govern both bilateral coordination modes and suggest that both limbs are controlled more independently during anti-phase movements, while bilateral in-phase movements are elicited by a common neural generator.
机译:同相和反相运动代表具有不同特征的两个基本协调模式:在同相运动期间,双侧同源肌肉群同步收缩,而在反相运动期间,它们以交替的方式收缩。先前的研究表明,同相运动代表了人类更稳定和优先的双边运动模板。当前的实验旨在通过引入在增强现实环境中执行双边圆绘图任务期间时空动力学的新经验度量,来确认和扩展这一概念。首先,我们发现与同相运动相比,反相具有更高的径向可变性,其结果主要由非优势手驱动。其次,在同相运动中,双肢的耦合度较高,这由较低的肢间相位差和较高的肢间同步性所证实。重要的是,在同相运动期间,双侧手之间的运动加速度分布遵循同相关系,而在反相状态下未发现特定关系。这些双手之间的时空关系支持以下假设:差分神经过程控制着两个双侧的协调模式,并表明在反相运动期间,双侧肢更独立地受到控制,而双侧同相运动是由一个通用的神经发生器引起的。

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