School of Physical Education and Sport Science at Serres, Aristotle University of Thessaloniki, Agios Ioannis, 62110, Serres, Greece.
School of Medicine, Aristotle University of Thessaloniki, Thessaloniki, Greece.
Sci Rep. 2021 Mar 17;11(1):6122. doi: 10.1038/s41598-021-84899-y.
Understanding the modulations of motor control in the presence of perturbations in task conditions of varying complexity is a key element towards the design of effective perturbation-based balance exercise programs. In this study we investigated the effect of mechanical perturbations, induced by an unstable surface, on muscle activation and visuo-postural coupling, when actively tracking target motion cues of different complexity. Four postural tasks following a visual oscillating target of varying target complexity (periodic-sinusoidal vs. chaotic-Lorenz) and surface (stable-floor vs. unstable-foam) were performed. The electromyographic activity of the main plantarflexor and dorsiflexor muscles was captured. The coupling between sway and target was assessed through spectral analysis and the system's local dynamic stability through the short-term maximum Lyapunov exponent. We found that external perturbations increased local instability and deteriorated visuo-motor coupling. Visuo-motor deterioration was greater for the chaotic target, implying that the effect of the induced perturbations depends on target complexity. There was a modulation of the neuromotor system towards amplification of muscle activity and coactivation to compensate surface-related perturbations and to ensure robust motor control. Our findings provide evidence that, in the presence of perturbations, target complexity induces specific modulations in the neuromotor system while controlling balance and posture.
理解在不同复杂任务条件下存在的扰动时运动控制的调制是设计有效的基于扰动的平衡运动计划的关键要素。在这项研究中,我们研究了当主动跟踪不同复杂程度的目标运动线索时,由不稳定表面引起的机械扰动对肌肉激活和视动耦合的影响。进行了四项跟随视觉摆动目标的姿势任务,目标的复杂程度不同(周期性正弦波与混沌洛伦兹),表面状况不同(稳定地面与不稳定泡沫)。记录了主要跖屈肌和背屈肌的肌电图活动。通过频谱分析评估了摆动和目标之间的耦合,通过短期最大李雅普诺夫指数评估了系统的局部动态稳定性。我们发现外部扰动增加了局部不稳定性并恶化了视动耦合。混沌目标的视动恶化更大,这意味着诱导扰动的影响取决于目标的复杂性。神经运动系统发生了调制,即增加肌肉活动的放大和共同激活,以补偿与表面相关的扰动,并确保稳健的运动控制。我们的研究结果表明,在存在扰动的情况下,目标复杂性在控制平衡和姿势的同时,会引起神经运动系统的特定调制。