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Observing how others lift light or heavy objects: time-dependent encoding of grip force in the primary motor cortex

机译:观察他人如何举起轻或重的物体:主要运动皮层中抓力的时间依赖性编码

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摘要

During movement observation, corticomotor excitability of the observer’s primary motor cortex (M1) is modulated according to the force requirements of the observed action. Here, we explored the time course of observation-induced force encoding. Force-related changes in M1-excitability were assessed by delivering transcranial magnetic stimulations at distinct temporal phases of an observed reach–grasp–lift action. Temporal changes in force-related electromyographic activity were also assessed during active movement execution. In observation conditions in which a heavy object was lifted, M1-excitability was higher compared to conditions in which a light object was lifted. Both during observation and execution, differential force encoding tended to gradually increase from the grasping phase until the late lift phase. Surprisingly, however, during observation, force encoding was already present at the early reach phase: a time point at which no visual cues on the object’s weight were available to the observer. As the observer was aware that the same weight condition was presented repeatedly, this finding may indicate that prior predictions concerning the upcoming weight condition are reflected by M1 excitability. Overall, findings may provide indications that the observer’s motor system represents motor predictions as well as muscular requirements to infer the observed movement goal.
机译:在运动观察过程中,观察者的初级运动皮层(M1)的皮质运动兴奋性根据观察到的动作的力要求进行调节。在这里,我们探讨了观察力编码的时间过程。通过在观察到的伸手抓握动作的不同时间阶段进行经颅磁刺激来评估与M1兴奋性有关的力相关变化。在主动运动执行过程中,还评估了与力有关的肌电图活动的时间变化。在举起重物的观察条件下,与举起轻物的条件相比,M1兴奋性更高。在观察和执行期间,差动力编码趋于从抓握阶段到升程后期逐渐增加。但是,令人惊讶的是,在观察过程中,在早期到达阶段已经存在力编码:在这个时间点,观察者无法获得物体重量的任何视觉线索。正如观察者所知,相同的体重状况是反复出现的,这一发现可能表明有关即将到来的体重状况的先前预测是由M1兴奋性反映的。总体而言,发现可能表明观察者的运动系统代表了运动预测以及推断观察到的运动目标的肌肉需求。

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  • 来源
    《Psychological Research》 |2012年第4期|p.503-513|共11页
  • 作者单位

    Motor Control Laboratory, Research Centre of Movement Control and Neuroplasticity, Department of Biomedical Kinesiology, Group Biomedical Sciences, Katholieke Universiteit Leuven, Tervuursevest 101, 3001, Heverlee, Belgium;

    Motor Control Laboratory, Research Centre of Movement Control and Neuroplasticity, Department of Biomedical Kinesiology, Group Biomedical Sciences, Katholieke Universiteit Leuven, Tervuursevest 101, 3001, Heverlee, Belgium;

    Motor Control Laboratory, Research Centre of Movement Control and Neuroplasticity, Department of Biomedical Kinesiology, Group Biomedical Sciences, Katholieke Universiteit Leuven, Tervuursevest 101, 3001, Heverlee, Belgium;

    Motor Control Laboratory, Research Centre of Movement Control and Neuroplasticity, Department of Biomedical Kinesiology, Group Biomedical Sciences, Katholieke Universiteit Leuven, Tervuursevest 101, 3001, Heverlee, Belgium;

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