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Temporal dynamics of cerebellar and motor cortex physiological processes during motor skill learning

机译:机动技能学习期间小脑和电动机皮质生理过程的时间动态

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Learning motor tasks involves distinct physiological processes in the cerebellum (CB) and primary motor cortex (M1). Previous studies have shown that motor learning results in at least two important neurophysiological changes: modulation of cerebellar output mediated in-part by long-term depression of parallel fiber-Purkinje cell synapse and induction of long-term plasticity (LTP) in M1, leading to transient occlusion of additional LTP-like plasticity. However, little is known about the temporal dynamics of these two physiological mechanisms during motor skill learning. Here we use non-invasive brain stimulation to explore CB and M1 mechanisms during early and late motor skill learning in humans. We predicted that early skill acquisition would be proportional to cerebellar excitability (CBI) changes, whereas later stages of learning will result in M1 LTP-like plasticity modifications. We found that early, and not late into skill training, CBI changed. Whereas, occlusion of LTP-like plasticity over M1 occurred only during late, but not early training. These findings indicate a distinct temporal dissociation in the physiological role of the CB and M1 when learning a novel skill. Understanding the role and temporal dynamics of different brain regions during motor learning is critical to device optimal interventions to augment learning.
机译:学习电机任务涉及小脑(CB)和初级电机皮质(M1)中的不同生理过程。以前的研究表明,电机学习导致至少两个重要的神经生理学变化:通过长期凹陷的平行纤维 - purkinje细胞突触和诱导M1中的长期塑性(LTP)介导的小脑输出的调节。瞬时闭塞额外的LTP样可塑性。然而,在运动技能学习期间,关于这两个生理机制的时间动态知之甚少。在这里,我们使用非侵入性大脑刺激在人类早期和晚期运动技能学习期间探索CB和M1机制。我们预测,早期技能获取将与小脑兴奋性(CBI)变化成比例,而后者的学习阶段将导致M1 LTP样可塑性修饰。我们发现早期,而不是迟到的技能训练,CBI改变了。虽然,在迟到的情况下,LTP样可塑性的LTP样可塑性闭塞,而且没有早期训练。这些发现表明CB和M1在学习新颖技能时明显的时间解离。了解电机学习期间不同脑区的作用和时间动态对设备最佳干预措施来说至关重要。

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