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准备在接球过程中调节预期反应和反射反应方面的作用。

The role of preparation in tuning anticipatory and reflex responses during catching.

作者信息

Lacquaniti F, Maioli C

机构信息

Istituto di Fisiologia dei Centri Nervosi, CNR, Milan, Italy.

出版信息

J Neurosci. 1989 Jan;9(1):134-48. doi: 10.1523/JNEUROSCI.09-01-00134.1989.

Abstract

The pattern of muscle responses associated with catching a ball in the presence of vision was investigated by independently varying the height of the drop and the mass of the ball. It was found that the anticipatory EMG responses comprised early and late components. The early components were produced at a roughly constant latency (about 130 msec) from the time of ball release. Their mean amplitude decreased with increasing height of fall. Late components represented the major build-up of muscle activity preceding the ball's impact and were accompanied by limb flexion. Their onset time was roughly constant (about 100 msec) with respect to the time of impact (except in wrist extensors). This indicates that the timing of these responses was based on an accurate estimate of the instantaneous values of the time-to-contact (time remaining before impact). The mean amplitude of the late anticipatory responses increased linearly with the expected momentum of the ball at impact. The reflex responses evoked by the ball's impact consisted in a short-latency coactivation of flexor and extensor muscles at the elbow and wrist joints. Their mean amplitude generally increased with the intensity of the perturbation both in the stretched muscles and in the shortening muscles. We argue that both the anticipatory and the reflex coactivation are centrally preset in preparation for catching and are instrumental for stabilizing limb posture after impact. A model with linear, time-varying viscoelastic coefficients was used to assess the neural and mechanical contributions to the damping of limb oscillations induced by the ball's impact. The model demonstrates that (1) anticipatory muscle stiffening and anticipatory flexion of the limb are synergistic in building up resistance of the hand to vertical displacement and (2) the reflex coactivation produces a further increment of hand stiffness and viscosity which tends to offset the decrement which would result from the limb extension produced by the impact.

摘要

通过独立改变球下落的高度和球的质量,研究了在有视觉情况下接球时肌肉反应的模式。结果发现,预期肌电图反应包括早期和晚期成分。早期成分在球释放后大致恒定的潜伏期(约130毫秒)产生。其平均幅度随下落高度的增加而减小。晚期成分代表球撞击前肌肉活动的主要增强,并伴有肢体屈曲。它们的起始时间相对于撞击时间大致恒定(约100毫秒)(腕伸肌除外)。这表明这些反应的时间是基于对接触时间(撞击前剩余时间)瞬时值的准确估计。晚期预期反应的平均幅度随球撞击时预期动量的增加而线性增加。球撞击引发的反射反应包括肘关节和腕关节处屈肌和伸肌的短潜伏期共同激活。它们的平均幅度通常随拉伸肌肉和缩短肌肉中扰动强度的增加而增加。我们认为预期反应和反射共同激活都是在中枢预先设定的,以准备接球,并有助于在撞击后稳定肢体姿势。使用具有线性时变粘弹性系数的模型来评估对球撞击引起的肢体振荡阻尼的神经和机械贡献。该模型表明:(1)预期的肌肉僵硬和肢体的预期屈曲在增强手部对垂直位移的抵抗力方面是协同的;(2)反射共同激活会使手部刚度和粘性进一步增加,这倾向于抵消因撞击产生的肢体伸展而导致的减小。

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