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通过大脑两半球间的相互作用实现运动控制和神经可塑性。

Motor control and neural plasticity through interhemispheric interactions.

机构信息

Department of Physical Medicine and Rehabilitation, Tohoku University Graduate School of Medicine, 2-1 Seiryo-Cho, Sendai 980-8575, Japan.

出版信息

Neural Plast. 2012;2012:823285. doi: 10.1155/2012/823285. Epub 2012 Dec 26.

Abstract

The corpus callosum, which is the largest white matter structure in the human brain, connects the 2 cerebral hemispheres. It plays a crucial role in maintaining the independent processing of the hemispheres and in integrating information between both hemispheres. The functional integrity of interhemispheric interactions can be tested electrophysiologically in humans by using transcranial magnetic stimulation, electroencephalography, and functional magnetic resonance imaging. As a brain structural imaging, diffusion tensor imaging has revealed the microstructural connectivity underlying interhemispheric interactions. Sex, age, and motor training in addition to the size of the corpus callosum influence interhemispheric interactions. Several neurological disorders change hemispheric asymmetry directly by impairing the corpus callosum. Moreover, stroke lesions and unilateral peripheral impairments such as amputation alter interhemispheric interactions indirectly. Noninvasive brain stimulation changes the interhemispheric interactions between both motor cortices. Recently, these brain stimulation techniques were applied in the clinical rehabilitation of patients with stroke by ameliorating the deteriorated modulation of interhemispheric interactions. Here, we review the interhemispheric interactions and mechanisms underlying the pathogenesis of these interactions and propose rehabilitative approaches for appropriate cortical reorganization.

摘要

胼胝体是人类大脑中最大的白质结构,连接着两个大脑半球。它在维持大脑半球的独立处理和整合两个半球之间的信息方面起着至关重要的作用。通过使用经颅磁刺激、脑电图和功能磁共振成像,人类可以在电生理学上测试半球间相互作用的功能完整性。作为一种脑结构成像技术,弥散张量成像揭示了半球间相互作用的微观结构连接。性别、年龄、运动训练以及胼胝体的大小都会影响半球间的相互作用。一些神经疾病会直接损害胼胝体,从而改变半球间的不对称性。此外,中风损伤和单侧外周损伤(如截肢)也会间接地改变半球间的相互作用。非侵入性脑刺激会改变两个运动皮层之间的半球间相互作用。最近,这些脑刺激技术被应用于中风患者的临床康复中,通过改善半球间相互作用的恶化调节来实现。在这里,我们回顾了这些相互作用的机制以及它们在发病机制中的作用,并提出了适当的皮质重组的康复方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d7f/3541646/b9001ec085b1/NP2012-823285.001.jpg

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