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运动计时背后的分布式神经系统。

Distributed neural systems underlying the timing of movements.

作者信息

Rao S M, Harrington D L, Haaland K Y, Bobholz J A, Cox R W, Binder J R

机构信息

Department of Neurology, Medical College of Wisconsin, Milwaukee, Wisconsin 53226, USA.

出版信息

J Neurosci. 1997 Jul 15;17(14):5528-35. doi: 10.1523/JNEUROSCI.17-14-05528.1997.

DOI:10.1523/JNEUROSCI.17-14-05528.1997
PMID:9204934
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6793838/
Abstract

Timing is essential to the execution of skilled movements, yet our knowledge of the neural systems underlying timekeeping operations is limited. Using whole-brain functional magnetic resonance imaging, subjects were imaged while tapping with their right index finger in synchrony with tones that were separated by constant intervals [Synchronization (S)], followed by tapping without the benefit of an auditory cue [Continuation (C)]. Two control conditions followed in which subjects listened to tones and then made pitch discriminations (D). Both the S and the C conditions produced equivalent activation within the left sensorimotor cortex, the right cerebellum (dorsal dentate nucleus), and the right superior temporal gyrus (STG). Only the C condition produced activation of a medial premotor system, including the caudal supplementary motor area (SMA), the left putamen, and the left ventrolateral thalamus. The C condition also activated a region within the right inferior frontal gyrus (IFG), which is functionally interconnected with auditory cortex. Both control conditions produced bilateral activation of the STG, and the D condition also activated the rostral SMA. These results suggest that the internal generation of precisely timed movements is dependent on three interrelated neural systems, one that is involved in explicit timing (putamen, ventrolateral thalamus, SMA), one that mediates auditory sensory memory (IFG, STG), and another that is involved in sensorimotor processing (dorsal dentate nucleus, sensorimotor cortex).

摘要

时间对于熟练动作的执行至关重要,但我们对计时操作背后的神经系统的了解有限。利用全脑功能磁共振成像技术,让受试者在与以恒定间隔分开的音调同步的情况下用右手食指敲击时进行成像[同步(S)],随后在没有听觉提示的情况下进行敲击[延续(C)]。接下来是两个对照条件,受试者听音调然后进行音高辨别(D)。S和C条件在左感觉运动皮层、右小脑(背侧齿状核)和右上颞回(STG)内产生了等效的激活。只有C条件激活了一个内侧运动前系统,包括尾侧辅助运动区(SMA)、左壳核和左腹外侧丘脑。C条件还激活了右下额叶回(IFG)内的一个区域,该区域与听觉皮层功能上相互连接。两个对照条件均产生了STG的双侧激活,并且D条件还激活了嘴侧SMA。这些结果表明,精确计时动作的内部产生依赖于三个相互关联的神经系统,一个参与明确计时(壳核、腹外侧丘脑、SMA),一个介导听觉感觉记忆(IFG、STG),另一个参与感觉运动处理(背侧齿状核、感觉运动皮层)。