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Electrifying the motor engram: effects of tDCS on motor learning and control

机译:给电机电动化:tDCS对电机学习和控制的影响

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摘要

Learning to control our movements is accompanied by neuroplasticity of motor areas of the brain. The mechanisms of neuroplasticity are diverse and produce what is referred to as the motor engram, i.e., the neural trace of the motor memory. Transcranial direct current stimulation (tDCS) alters the neural and behavioral correlates of motor learning, but its precise influence on the motor engram is unknown. In this review, we summarize the effects of tDCS on neural activity and suggest a few key principles: (1) Firing rates are increased by anodal polarization and decreased by cathodal polarization, (2) anodal polarization strengthens newly formed associations, and (3) polarization modulates the memory of new/preferred firing patterns. With these principles in mind, we review the effects of tDCS on motor control, motor learning, and clinical applications. The increased spontaneous and evoked firing rates may account for the modulation of dexterity in non-learning tasks by tDCS. The facilitation of new association may account for the effect of tDCS on learning in sequence tasks while the ability of tDCS to strengthen memories of new firing patterns may underlie the effect of tDCS on consolidation of skills. We then describe the mechanisms of neuroplasticity of motor cortical areas and how they might be influenced by tDCS. We end with current challenges for the fields of brain stimulation and motor learning.
机译:学会控制我们的运动伴随着大脑运动区域的神经可塑性。神经可塑性的机制是多种多样的,并且产生所谓的运动记忆,即运动记忆的神经轨迹。经颅直流电刺激(tDCS)改变了运动学习的神经和行为相关性,但其对运动印记的精确影响尚不清楚。在这篇综述中,我们总结了tDCS对神经活动的影响,并提出了一些关键原则:(1)阳极极化增加了射速,阴极极化减少了射速,(2)阳极极化增强了新形成的关联,(3)极化调制了新的/首选发射模式的记忆。牢记这些原则,我们回顾了tDCS对运动控制,运动学习和临床应用的影响。自发的和诱发的激发速率的增加可能解释了tDCS在非学习任务中对灵活性的调节。促进新的交往可能解释了tDCS对顺序任务学习的影响,而tDCS增强对新射击方式记忆的能力可能是tDCS对技能巩固的影响的基础。然后,我们描述了运动皮质区域的神经可塑性机制,以及它们可能如何受到tDCS的影响。我们在脑刺激和运动学习领域面临当前挑战。

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