首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Cooperation Not Competition: Bihemispheric tDCS and fMRI Show Role for Ipsilateral Hemisphere in Motor Learning
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Cooperation Not Competition: Bihemispheric tDCS and fMRI Show Role for Ipsilateral Hemisphere in Motor Learning

机译:合作不竞争:Bihemispheric TDCS和FMRI表明在Motor学习中的IpsilateLal Hemisphere的作用

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摘要

What is the role of ipsilateral motor and premotor areas in motor learning? One view is that ipsilateral activity suppresses contralateral motor cortex and, accordingly, that inhibiting ipsilateral regions can improve motor learning. Alternatively, the ipsilateral motor cortex may play an active role in the control and/or learning of unilateral hand movements. We approached this question by applying double-blind bihemispheric transcranial direct current stimulation (tDCS) over both contralateral and ipsilateral motor cortex in a between group design during 4 d of unimanual explicit sequence training in human participants. Independently of whether the anode was placed over contralateral or ipsilateral motor cortex, bihemispheric stimulation yielded substantial performance gains relative to unihemispheric or sham stimulation. This performance advantage appeared to be supported by plastic changes in both hemispheres. First, we found that behavioral advantages generalized strongly to the untrained hand, suggesting that tDCS strengthened effector-independent representations. Second, functional imaging during speed-matched execution of trained sequences conducted 48 h after training revealed sustained, polarity-independent increases in activity in both motor cortices relative to the sham group. These results suggest a cooperative rather than competitive interaction of the two motor cortices during skill learning and suggest that bihemispheric brain stimulation during unimanual skill learning may be beneficial because it harnesses plasticity in the ipsilateral hemisphere.
机译:Motor Leathare在电机学习中的同侧电机和热球区域的作用是什么?一个观点是,同侧活动抑制对侧电机皮质,因此抑制同侧区域可以改善电机学习。或者,同侧电动机皮质可能在单侧手动运动的控制和/或学习中发挥积极作用。我们通过采用双盲走近这个问题bihemispheric经颅直流电刺激(TDCS)在组间设计在两个对侧及同侧运动皮层中的人类参与者unimanual明确的序列训练4 d。独立于阳极是否被置于对侧或同侧电机皮质,Biehemisbheric刺激相对于Unihemispheric或假刺激产生了显着的性能。这种性能优势似乎通过两个半球的塑性变化来支持。首先,我们发现行为优势广泛地向未经训练的手拓展,表明TDCS加强了与效率无关的陈述。其次,在训练序列的速度匹配的执行期间进行的功能成像在训练后进行48小时,在训练持续的持续,极性无关地增加的相对于假手术组中的活性。这些结果表明,在技能学习期间,这两个机器皮质的合作而不是竞争性互动,并表明在不可移动的技能学习期间的Biehemisberic脑刺激可能是有益的,因为它利用了同侧半球的可塑性。

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