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Temporal recalibration of motor and visual potentials in lag adaptation in voluntary movement

机译:自愿运动中滞后适应的电动机的时间重新校准

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Adaptively recalibrating motor-sensory asynchrony is critical for animals to perceive self-produced action consequences. It is controversial whether motor-or sensory-related neural circuits recalibrate this asynchrony. By combining magnetoencephalography (MEG) and functional MRI (fMRI), we investigate the temporal changes in brain activities caused by repeated exposure to a 150-ms delay inserted between a button-press action and a subsequent flash. We found that readiness potentials significantly shift later in the motor system, especially in parietal regions (average: 219.9 ms), while visually evoked potentials significantly shift earlier in occipital regions (average: 49.7 ms) in the delay condition compared to the no-delay condition. Moreover, the shift in readiness potentials, but not in visually evoked potentials, was significantly correlated with the psychophysical measure of motor-sensory adaptation. These results suggest that although both motor and sensory processes contribute to the recalibration, the motor process plays the major role, given the magnitudes of shift and the correlation with the psychophysical measure.
机译:自适应重新校准电动机感觉异步对于动物来说至关重要,以感知自我产生的动作后果。争议是否有争议的电动机或感官相关的神经电路重新校准这款异步。通过组合磁性脑(MEG)和功能MRI(FMRI),我们研究了在按钮 - 按压动作和后续闪光之间插入的150ms延迟引起的大脑活动的时间变化。我们发现,随着延迟条件,在视力区域(平均:219.9毫秒)中,尤其是在台廓(平均:219.9毫秒)中,尤其是在平均区域(平均:219.9毫秒)中显着转移。健康)状况。此外,随着电动机调整的心理物理测量,准备潜力的转变和在视觉上诱发电位中显着相关。这些结果表明,虽然电机和感官过程都有助于重新校准,但是,鉴于移位的大幅度和与心理物理措施的相关性,电机过程发挥着重要作用。

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