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Directional tuning of human forearm muscle afferents during voluntary wrist movements

机译:腕部随意运动过程中人类前臂肌肉传入的定向调整

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class="enumerated" style="list-style-type:decimal">Single unit activity was recorded with the microneurography technique from sixteen spindle afferents and one Golgi tendon organ afferent originating from the forearm extensor muscles. Impulse rates were studied while subjects performed unobstructed aiming movements at the wrist in eight different directions 45 deg apart. In addition, similar imposed movements were performed while the subject was instructed to remain relaxed. Movement amplitudes were about 5 deg and the speed 10–30 deg s−1. Joint movements were translated to movements of a cursor on a monitor to provide visual feedback.Individual spindle afferents modulated their activity over a number of targets, i.e. were broadly tuned, during these aiming movements. The preferred direction for a spindle afferent was the same during both passive and active movements, indicating that the fusimotor effects associated with active contractions had little or no effect on the direction of tuning.The direction of tuning of individual spindle afferents could be predicted from the biomechanically inferred length changes of the parent muscle. Thus spindle afferents responded as stretch receptors, i.e. impulse rates increased with lengthening and decreased with shortening, in active as well as passive movements.Spindles from muscles, which continuously counteracted gravity exhibited a stretch response and directional tuning during the phase of movement alone whereas their position sensitivity was poor. In contrast, spindle afferents from the muscles that had no or minimal antigravity role were directionally tuned during both the dynamic and the static phase of the aiming task and their position sensitivity was substantially higher.In spite of the limited data base from three extensor muscles it could be demonstrated that wrist joint position was remarkably well encoded in the ensemble muscle spindle data. In some cases the ensemble muscle spindle data encoded the instantaneous trajectory of movement as well.
机译:class =“ enumerated” style =“ list-style-type:decimal”> <!-list-behavior =枚举前缀-word = mark-type = decimal max-label-size = 0-> 用微神经成像技术记录了十六个纺锤体传入神经和一个源自前臂伸肌的高尔基腱器官传入的单个单位活动。研究了冲动率,而受试者在手腕上以45度相隔八个不同方向进行了无阻碍的瞄准运动。另外,在指示受试者保持放松的同时,进行了类似的强加动作。运动幅度约为5度,速度约为10至30度s -1 。关节运动被转换为监视器上光标的运动,以提供视觉反馈。 在这些瞄准运动中,各个主轴传入物体在多个目标上进行了调节,即进行了广泛地调整。在被动运动和主动运动中,主轴传入的首选方向都相同,这表明与主动收缩相关的融合运动对调节方向几乎没有影响。 个体的调节方向可以根据亲代肌肉的生物力学推断的长度变化来预测纺锤传入。因此,主轴传入神经作为拉伸感受器做出响应,即在主动运动和被动运动中,冲动速率随时间的延长而增加,而随着运动的缩短而减小。仅运动阶段,而其位置敏感性较差。相比之下,在瞄准任务的动态和静态阶段,不具有反重力作用或只有极小的反重力作用的肌肉的主轴传入方向都进行了定向调整,并且其位置灵敏度明显更高。 尽管有限,从三个伸肌的数据库可以证明,腕关节的位置在整体肌梭数据中编码非常好。在某些情况下,合奏的肌肉纺锤体数据也会编码运动的瞬时轨迹。

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