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Less precise motor control leads to increased agonist-antagonist muscle activation during stick balancing

机译:较不精确的运动控制导致杆平衡过程中激动剂-拮抗剂肌肉的激活增加

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Human motor control has constraints in terms of its responsiveness, which limit its ability to successfully perform tasks. In a previous study, it was shown that the ability to balance an upright stick became progressively more challenging as the natural frequency (angular velocity without control) of the stick increased. Furthermore, forearm and trunk agonist and antagonist muscle activation increased as the natural frequency of the stick increased, providing evidence that the central nervous system produces agonist-antagonist muscle activation to match task dynamics. In the present study, visual feedback of the stick position was influenced by changing where subject focused on the stick during stick balancing. It was hypothesized that a lower focal height would degrade motor control (more uncertainty in tracking stick position), thus making balancing more challenging. The probability of successfully balancing the stick at four different focal heights was determined along with the average angular velocity of the stick. Electromyographic signals from forearm and trunk muscles were also recorded. As expected, the probability of successfully balancing the stick decreased and the average angular velocity of the stick increased as subjects focused lower on the stick. In addition, changes in the level of agonist and antagonist muscle activation in the forearm and trunk was linearly related to changes in the angular velocity of the stick during balancing. One possible explanation for this is that the central nervous system increases muscle activation to account for less precise motor control, possibly to improve the responsiveness of human motor control. (C) 2016 Elsevier B.V. All rights reserved.
机译:人体运动控制在响应能力方面有限制,这限制了其成功执行任务的能力。在先前的研究中,表明随着棒的固有频率(无控制的角速度)增加,平衡直立棒的能力变得越来越具有挑战性。此外,前臂和躯干激动剂和拮抗肌的激活随着棒的自然频率的增加而增加,这提供了中枢神经系统产生激动剂-拮抗肌的激活以匹配任务动态的证据。在本研究中,杆的视觉反馈受杆平衡过程中受检者聚焦在杆上的位置的影响。据推测,较低的焦距会降低电动机的控制能力(跟踪杆位置的不确定性更大),从而使平衡更具挑战性。确定了在四个不同焦高下成功平衡杆的可能性以及杆的平均角速度。还记录了前臂和躯干肌肉的肌电信号。如预期的那样,随着受试者将注意力集中在棒上,成功平衡棒的可能性降低,并且棒的平均角速度增加。此外,前臂和躯干中激动剂和拮抗剂肌肉活化水平的变化与平衡过程中棒的角速度的变化线性相关。一种可能的解释是,中枢神经系统增加了肌肉的激活,导致运动控制的精确度降低,从而可能改善了人类运动控制的响应能力。 (C)2016 Elsevier B.V.保留所有权利。

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