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感觉运动训练对顶后皮质-初级运动皮质通路的时程依赖性调制。

Timing-dependent modulation of the posterior parietal cortex-primary motor cortex pathway by sensorimotor training.

机构信息

Human Motor Control Section, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD, USA.

出版信息

J Neurophysiol. 2012 Jun;107(11):3190-9. doi: 10.1152/jn.01049.2011. Epub 2012 Mar 21.

Abstract

Interplay between posterior parietal cortex (PPC) and ipsilateral primary motor cortex (M1) is crucial during execution of movements. The purpose of the study was to determine whether functional PPC-M1 connectivity in humans can be modulated by sensorimotor training. Seventeen participants performed a sensorimotor training task that involved tapping the index finger in synchrony to a rhythmic sequence. To explore differences in training modality, one group (n = 8) learned by visual and the other (n = 9) by auditory stimuli. Transcranial magnetic stimulation (TMS) was used to assess PPC-M1 connectivity before and after training, whereas electroencephalography (EEG) was used to assess PPC-M1 connectivity during training. Facilitation from PPC to M1 was quantified using paired-pulse TMS at conditioning-test intervals of 2, 4, 6, and 8 ms by measuring motor-evoked potentials (MEPs). TMS was applied at baseline and at four time points (0, 30, 60, and 180 min) after training. For EEG, task-related power and coherence were calculated for early and late training phases. The conditioned MEP was facilitated at a 2-ms conditioning-test interval before training. However, facilitation was abolished immediately following training, but returned to baseline at subsequent time points. Regional EEG activity and interregional connectivity between PPC and M1 showed an initial increase during early training followed by a significant decrease in the late phases. The findings indicate that parietal-motor interactions are activated during early sensorimotor training when sensory information has to be integrated into a coherent movement plan. Once the sequence is encoded and movements become automatized, PPC-M1 connectivity returns to baseline.

摘要

顶叶皮层(PPC)和同侧初级运动皮层(M1)之间的相互作用对于运动的执行至关重要。本研究的目的是确定人类的PPC-M1 功能连接是否可以通过感觉运动训练来调节。17 名参与者执行了一项感觉运动训练任务,该任务涉及以节奏序列同步敲击食指。为了探索训练方式的差异,一组(n=8)通过视觉刺激学习,另一组(n=9)通过听觉刺激学习。使用经颅磁刺激(TMS)在训练前后评估 PPC-M1 连接,同时使用脑电图(EEG)在训练期间评估 PPC-M1 连接。通过测量运动诱发电位(MEP),使用双脉冲 TMS 在条件-测试间隔为 2、4、6 和 8ms 时量化 PPC 到 M1 的易化作用。TMS 在基线和训练后 4 个时间点(0、30、60 和 180 分钟)进行。对于 EEG,在早期和晚期训练阶段计算任务相关的功率和相干性。在训练前,2ms 的条件-测试间隔时,条件性 MEP 被易化。然而,易化在训练后立即被消除,但在随后的时间点恢复到基线。PPC 和 M1 之间的区域 EEG 活动和区域间连通性在早期训练期间最初增加,随后在晚期阶段显著下降。研究结果表明,在早期感觉运动训练期间,当必须将感觉信息整合到连贯的运动计划中时,顶叶-运动相互作用被激活。一旦序列被编码并且运动变得自动化,PPC-M1 连接就会恢复到基线。

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