Anodal Transcranial Direct Current Stimulation (atDCS) of the Primary Motor Cortex (M1) Facilitates Nonconscious Error Correction of Negative Phase Shifts

IF 3.1 4区 医学 Q2 Medicine Neural Plasticity Pub Date : 2022-05-25 DOI:10.1155/2022/9419154
B. Pollok, Martin Jurkiewicz, V. Krause
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引用次数: 2

Abstract

Accurate motor timing requires the temporally precise coupling between sensory input and motor output including the adjustment of movements with respect to changes in the environment. Such error correction has been related to a cerebello-thalamo-cortical network. At least partially distinct networks for the correction of perceived (i.e., conscious) as compared to nonperceived (i.e., nonconscious) errors have been suggested. While the cerebellum, the premotor, and the prefrontal cortex seem to be involved in conscious error correction, the network subserving nonconscious error correction is less clear. The present study is aimed at investigating the functional contribution of the primary motor cortex (M1) for both types of error correction in the temporal domain. To this end, anodal transcranial direct current stimulation (atDCS) was applied to the left M1 in a group of 18 healthy young volunteers during a resting period of 10 minutes. Sensorimotor synchronization as well as error correction of the right index finger was tested immediately prior to and after atDCS. Sham stimulation served as control condition. To induce error correction, nonconscious and conscious temporal step-changes were interspersed in a sequence of an isochronous auditory pacing signal in either direction (i.e., negative or positive) yielding either shorter or longer intervals. Prior to atDCS, faster error correction in conscious as compared to nonconscious trials was observed replicating previous findings. atDCS facilitated nonconscious error correction, but only in trials with negative step-changes yielding shorter intervals. In contrast to this, neither tapping speed nor synchronization performance with respect to the isochronous pacing signal was significantly modulated by atDCS. The data suggest M1 as part of a network distinctively contributing to the correction of nonconscious negative step-changes going beyond sensorimotor synchronization.
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初级运动皮层(M1)的阳极经颅直流电刺激(atDCS)促进负相移的无意识错误纠正
准确的电机定时要求在感官输入和电机输出之间的时间精确耦合,包括根据环境变化调整运动。这种错误纠正与小脑-丘脑-皮质网络有关。与非感知(即无意识)错误相比,已经提出了至少部分不同的用于纠正感知(即有意识)错误的网络。虽然小脑、前运动区和前额叶皮层似乎参与了有意识的错误纠正,但服务于无意识错误纠正的网络却不太清楚。本研究旨在探讨初级运动皮层(M1)在颞域中对两种类型的错误纠正的功能贡献。为此,18名健康青年志愿者在休息10分钟的时间内对左M1施加阳极经颅直流电刺激(atDCS)。在atDCS之前和之后立即测试了右手食指的感觉运动同步和纠错。假性刺激作为对照组。为了诱导错误纠正,在一个等时听觉起搏信号序列中(即,负或正)穿插无意识和有意识的时间阶跃变化,产生更短或更长的间隔。在atDCS之前,与无意识试验相比,在有意识试验中观察到更快的错误纠正,重复了先前的研究结果。atDCS促进了无意识错误纠正,但仅在负阶跃变化产生较短间隔的试验中。与此相反,atDCS对等时起搏信号的分拍速度和同步性能都没有显著调节。数据表明,M1是一个网络的一部分,特别有助于纠正超越感觉运动同步的无意识负阶跃变化。
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来源期刊
Neural Plasticity
Neural Plasticity Neuroscience-Neurology
CiteScore
5.70
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: Neural Plasticity is an international, interdisciplinary journal dedicated to the publication of articles related to all aspects of neural plasticity, with special emphasis on its functional significance as reflected in behavior and in psychopathology. Neural Plasticity publishes research and review articles from the entire range of relevant disciplines, including basic neuroscience, behavioral neuroscience, cognitive neuroscience, biological psychology, and biological psychiatry.
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