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Dissociating the roles of the cerebellum and motor cortex during adaptive learning: the motor cortex retains what the cerebellum learns.

机译:在适应性学习过程中,将小脑和运动皮层的作用分离开:运动皮层保留了小脑所学。

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Adaptation to a novel visuomotor transformation has revealed important principles regarding learning and memory. Computational and behavioral studies have suggested that acquisition and retention of a new visuomotor transformation are distinct processes. However, this dissociation has never been clearly shown. Here, participants made fast reaching movements while unexpectedly a 30-degree visuomotor transformation was introduced. During visuomotor adaptation, subjects received cerebellar, primary motor cortex (M1) or sham anodal transcranial direct current stimulation (tDCS), a noninvasive form of brain stimulation known to increase excitability. We found that cerebellar tDCS caused faster adaptation to the visuomotor transformation, as shown by a rapid reduction of movement errors. These findings were not present with similar modulation of visual cortex excitability. In contrast, tDCS over M1 did not affect adaptation, but resulted in a marked increase in retention of the newly learnt visuomotor transformation. These results show a clear dissociation in the processes of acquisition and retention during adaptive motor learning and demonstrate that the cerebellum and primary motor cortex have distinct functional roles. Furthermore, they show that is possible to enhance cerebellar function using tDCS.
机译:适应新型的视觉运动转换揭示了关于学习和记忆的重要原理。计算和行为研究表明,新的视觉运动转换的获取和保留是不同的过程。但是,这种分离从未清楚地显示出来。在这里,参与者进行了快速动作,而意外地引入了30度的视觉运动转换。在视觉运动适应过程中,受试者接受小脑,原发性运动皮层(M1)或假肛门经颅直流电刺激(tDCS),这是一种已知会增加兴奋性的非侵入性脑刺激形式。我们发现,小脑tDCS可以更快地适应视觉运动转换,如运动误差的快速减少所显示。这些发现在视觉皮层兴奋性的类似调节中不存在。相比之下,tDCS超过M1不会影响适应性,但会导致新学习的黏膜运动转化的保留率显着提高。这些结果表明,在自适应运动学习过程中,获取和保留过程明显分离,并证明小脑和初级运动皮层具有独特的功能作用。此外,他们表明使用tDCS可以增强小脑功能。

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