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本文引用的文献

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Temporal dynamics of cerebellar and motor cortex physiological processes during motor skill learning.运动技能学习过程中小脑和运动皮层生理过程的时间动态。
Sci Rep. 2017 Jan 16;7:40715. doi: 10.1038/srep40715.
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Neural Substrates Related to Motor Memory with Multiple Timescales in Sensorimotor Adaptation.感觉运动适应中与多时间尺度运动记忆相关的神经基质。
PLoS Biol. 2015 Dec 8;13(12):e1002312. doi: 10.1371/journal.pbio.1002312. eCollection 2015 Dec.
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Dual-process decomposition in human sensorimotor adaptation.人类感觉运动适应中的双加工分解。
Curr Opin Neurobiol. 2015 Aug;33:71-7. doi: 10.1016/j.conb.2015.03.003. Epub 2015 Mar 28.
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Non-invasive electrical and magnetic stimulation of the brain, spinal cord, roots and peripheral nerves: Basic principles and procedures for routine clinical and research application. An updated report from an I.F.C.N. Committee.经颅磁刺激和电刺激:临床和研究应用的基本原理和操作规范。国际神经电生理学会技术规范委员会更新报告。
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The uses and interpretations of the motor-evoked potential for understanding behaviour.运动诱发电位在理解行为方面的用途及解读
Exp Brain Res. 2015 Mar;233(3):679-89. doi: 10.1007/s00221-014-4183-7. Epub 2015 Jan 7.
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Understanding and modulating motor learning with cerebellar stimulation.通过小脑刺激理解和调节运动学习。
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Fast but fleeting: adaptive motor learning processes associated with aging and cognitive decline.快速但短暂:与衰老和认知衰退相关的适应性运动学习过程
J Neurosci. 2014 Oct 1;34(40):13411-21. doi: 10.1523/JNEUROSCI.1489-14.2014.
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Two distinct interneuron circuits in human motor cortex are linked to different subsets of physiological and behavioral plasticity.人类运动皮层中有两个不同的中间神经元回路,与不同的生理和行为可塑性子集相关联。
J Neurosci. 2014 Sep 17;34(38):12837-49. doi: 10.1523/JNEUROSCI.1960-14.2014.
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The role of inhibition in human motor cortical plasticity.抑制在人类运动皮层可塑性中的作用。
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Cerebellar and prefrontal cortex contributions to adaptation, strategies, and reinforcement learning.小脑和前额叶皮质对适应、策略及强化学习的作用。
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运动学习中快速和慢速适应性过程的皮质脊髓相关性。

Corticospinal correlates of fast and slow adaptive processes in motor learning.

作者信息

Sarwary Adjmal M E, Wischnewski Miles, Schutter Dennis J L G, Selen Luc P J, Medendorp W Pieter

机构信息

Radboud University, Donders Institute for Brain, Cognition and Behaviour, Nijmegen , The Netherlands.

出版信息

J Neurophysiol. 2018 Oct 1;120(4):2011-2019. doi: 10.1152/jn.00488.2018. Epub 2018 Aug 22.

DOI:10.1152/jn.00488.2018
PMID:30133377
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6230793/
Abstract

Recent computational theories and behavioral observations suggest that motor learning is supported by multiple adaptation processes, operating on different timescales, but direct neural evidence is lacking. We tested this hypothesis by applying transcranial magnetic stimulation over motor cortex in 16 human subjects during a validated reach adaptation task. Motor-evoked potentials (MEPs) and cortical silent periods (CSPs) were recorded from the biceps brachii to assess modulations of corticospinal excitability as indices for corticospinal plasticity. Guided by a two-state adaptation model, we show that the MEP reflects an adaptive process that learns quickly but has poor retention, while the CSP correlates with a process that responds more slowly but retains information well. These results provide a physiological link between models of motor learning and distinct changes in corticospinal excitability. Our findings support the relationship between corticospinal gain modulations and the adaptive processes in motor learning. NEW & NOTEWORTHY Computational theories and behavioral observations suggest that motor learning is supported by multiple adaptation processes, but direct neural evidence is lacking. We tested this hypothesis by applying transcranial magnetic stimulation over human motor cortex during a reach adaptation task. Guided by a two-state adaptation model, we show that the motor-evoked potential reflects a process that adapts and decays quickly, whereas the cortical silent period reflects slow adaptation and decay.

摘要

最近的计算理论和行为观察表明,运动学习由多个适应过程支持,这些过程在不同的时间尺度上运作,但缺乏直接的神经证据。我们通过在一项经过验证的伸手适应任务中,对16名人类受试者的运动皮层施加经颅磁刺激来检验这一假设。从肱二头肌记录运动诱发电位(MEP)和皮质静息期(CSP),以评估皮质脊髓兴奋性的调制,作为皮质脊髓可塑性的指标。在一个双状态适应模型的指导下,我们发现MEP反映了一个学习迅速但保持性差的适应过程,而CSP与一个反应较慢但信息保持良好的过程相关。这些结果在运动学习模型和皮质脊髓兴奋性的明显变化之间提供了生理联系。我们的发现支持了皮质脊髓增益调制与运动学习中的适应过程之间的关系。新内容及值得注意的点:计算理论和行为观察表明运动学习由多个适应过程支持,但缺乏直接的神经证据。我们通过在伸手适应任务中对人类运动皮层施加经颅磁刺激来检验这一假设。在一个双状态适应模型的指导下,我们发现运动诱发电位反映了一个快速适应和衰减的过程,而皮质静息期反映了缓慢的适应和衰减。