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正常步态与精准步态运动想象的脑关联

Cerebral correlates of motor imagery of normal and precision gait.

作者信息

Bakker M, De Lange F P, Helmich R C, Scheeringa R, Bloem B R, Toni I

机构信息

FC Donders Centre for Cognitive Neuroimaging, Radboud University Nijmegen, The Netherlands.

出版信息

Neuroimage. 2008 Jul 1;41(3):998-1010. doi: 10.1016/j.neuroimage.2008.03.020. Epub 2008 Mar 25.

Abstract

We have examined the cerebral structures involved in motor imagery of normal and precision gait (i.e., gait requiring precise foot placement and increased postural control). We recorded cerebral activity with functional magnetic resonance imaging while subjects imagined walking along paths of two different widths (broad, narrow) that required either normal gait, or exact foot placement and increased postural control. We used a matched visual imagery (VI) task to assess the motor specificity of the effects, and monitored task performance by recording imagery times, eye movements, and electromyography during scanning. In addition, we assessed the effector specificity of MI of gait by comparing our results with those of a previous study on MI of hand movements. We found that imagery times were longer for the narrow path during MI, but not during VI, suggesting that MI was sensitive to the constraints imposed by a narrow walking path. Moreover, MI of precision gait resulted in increased cerebral activity and effective connectivity within a network involving the superior parietal lobules, the dorsal precentral gyri, and the right middle occipital gyrus. Finally, the cerebral responses to MI of gait were contiguous to but spatially distinct from regions involved in MI of hand movements. These results emphasize the role of cortical structures outside primary motor regions in imagining locomotion movements when accurate foot positioning and increased postural control is required.

摘要

我们研究了参与正常和精准步态(即需要精确足部放置和增强姿势控制的步态)运动想象的大脑结构。我们在受试者想象沿着两种不同宽度(宽、窄)的路径行走时,使用功能磁共振成像记录大脑活动,这两种路径分别需要正常步态,或精确的足部放置和增强的姿势控制。我们使用匹配的视觉想象(VI)任务来评估这些效应的运动特异性,并在扫描过程中通过记录想象时间、眼动和肌电图来监测任务表现。此外,我们通过将我们的结果与之前一项关于手部运动想象的研究结果进行比较,评估了步态运动想象的效应器特异性。我们发现,在运动想象期间,狭窄路径的想象时间更长,但在视觉想象期间并非如此,这表明运动想象对狭窄行走路径所施加的限制很敏感。此外,精准步态的运动想象导致涉及顶上小叶、中央前回背侧和右枕中回的网络内大脑活动增加和有效连接增强。最后,对步态运动想象的大脑反应与手部运动想象所涉及的区域相邻但在空间上不同。这些结果强调了在需要精确足部定位和增强姿势控制时,初级运动区域之外的皮质结构在想象运动动作中的作用。

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