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小脑-间脑-顶叶网络内预期性运动控制的证据。

Evidence for anticipatory motor control within a cerebello-diencephalic-parietal network.

作者信息

Pollok Bettina, Gross Joachim, Kamp Daniel, Schnitzler Alfons

机构信息

Department of Neurology, Heinrich Heine University, Duesseldorf, Germany.

出版信息

J Cogn Neurosci. 2008 May;20(5):828-40. doi: 10.1162/jocn.2008.20506.

DOI:10.1162/jocn.2008.20506
PMID:18201129
Abstract

The posterior parietal cortex and the cerebellum are assumed to contribute to anticipatory motor control. Thus, it is reasonable that these areas act as a functional unit. To identify a neural signature of anticipatory motor control, 11 healthy volunteers performed a bimanual finger-tapping task with respect to isochronous (i.e., regular) and randomized (i.e., irregular) auditory pacing. Neuromagnetic activity was recorded using a 122-channel whole-head neuromagnetometer. Functional interaction between spatially distributed brain areas was determined by measures of tap-related phase synchronization. Assuming that (i) the cerebellum predicts sensory events by an internal model and (ii) the PPC maintains this prediction, we hypothesized that functional interaction between both structures varies depending on the predictability of the pacing signal. During isochronous pacing, functional connectivity within a cerebello-diencephalic-parietal network before tap onset was evident, suggesting anticipatory motor control. During randomized pacing, however, functional connectivity after tap onset was increased within a parietal-cerebellar loop, suggesting mismatch detection and update of the internal model. Data of the present study imply that anticipatory motor control is implemented in a network-like manner. Our data agree well with the hypothesis that functional connectivity in a cerebello-diencephalic-parietal loop might be crucial for anticipatory motor control, whereas parietal-cerebellar interaction might be critical for feedback processing.

摘要

后顶叶皮层和小脑被认为有助于预期性运动控制。因此,这些区域作为一个功能单元发挥作用是合理的。为了识别预期性运动控制的神经特征,11名健康志愿者针对同步(即规则)和随机(即不规则)听觉节拍执行了双手手指敲击任务。使用122通道全脑磁强计记录神经磁活动。通过敲击相关的相位同步测量来确定空间分布的脑区之间的功能相互作用。假设(i)小脑通过内部模型预测感觉事件,以及(ii)后顶叶皮层维持这种预测,我们假设这两个结构之间的功能相互作用会根据节拍信号的可预测性而变化。在同步节拍期间,敲击开始前小脑 - 间脑 - 顶叶网络内的功能连接是明显的,表明存在预期性运动控制。然而,在随机节拍期间,敲击开始后顶叶 - 小脑环路内的功能连接增加,表明内部模型的失配检测和更新。本研究的数据表明,预期性运动控制是以网络样方式实现的。我们的数据与以下假设非常吻合,即小脑 - 间脑 - 顶叶环路中的功能连接可能对预期性运动控制至关重要,而顶叶 - 小脑相互作用可能对反馈处理至关重要。

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