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Attention modulates the gating of primary somatosensory oscillations.注意调节初级体感振荡的门控。
Neuroimage. 2020 May 1;211:116610. doi: 10.1016/j.neuroimage.2020.116610. Epub 2020 Feb 7.
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Prefrontal theta modulates sensorimotor gamma networks during the reorienting of attention.前额叶θ波在注意重定向过程中调节感觉运动γ网络。
Hum Brain Mapp. 2020 Feb 1;41(2):520-529. doi: 10.1002/hbm.24819. Epub 2019 Oct 17.
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Proactive control without midfrontal control signals? The role of midfrontal oscillations in preparatory conflict adjustments.无需额前控制信号的主动控制?额前振荡在预备冲突调整中的作用。
Biol Psychol. 2019 Nov;148:107747. doi: 10.1016/j.biopsycho.2019.107747. Epub 2019 Aug 27.
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Neural Organization of Hierarchical Motor Sequence Representations in the Human Neocortex.人类新皮层中分层运动序列表示的神经组织。
Neuron. 2019 Sep 25;103(6):1178-1190.e7. doi: 10.1016/j.neuron.2019.06.017. Epub 2019 Jul 22.
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The developmental trajectory of sensorimotor cortical oscillations.感觉运动皮层振荡的发展轨迹。
Neuroimage. 2019 Jan 1;184:455-461. doi: 10.1016/j.neuroimage.2018.09.018. Epub 2018 Sep 12.
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The lifespan trajectory of neural oscillatory activity in the motor system.运动系统中神经振荡活动的寿命轨迹。
Dev Cogn Neurosci. 2018 Apr;30:159-168. doi: 10.1016/j.dcn.2018.02.013. Epub 2018 Mar 2.
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The peak frequency of motor-related gamma oscillations is modulated by response competition.运动相关γ振荡的峰值频率受反应竞争的调节。
Neuroimage. 2018 Jan 15;165:27-34. doi: 10.1016/j.neuroimage.2017.09.059. Epub 2017 Sep 28.
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Temporal Dynamics of Proactive and Reactive Motor Inhibition.主动和反应性运动抑制的时间动态
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9
The functional role of post-movement beta oscillations in motor termination.运动后β振荡在运动终止中的功能作用。
Brain Struct Funct. 2017 Sep;222(7):3075-3086. doi: 10.1007/s00429-017-1387-1. Epub 2017 Mar 24.
10
Developmental Trajectory of Beta Cortical Oscillatory Activity During a Knee Motor Task.膝关节运动任务期间β皮质振荡活动的发育轨迹
Brain Topogr. 2016 Nov;29(6):824-833. doi: 10.1007/s10548-016-0500-8. Epub 2016 Jun 9.

顶叶振荡动力学介导运动表现的发育改善。

Parietal Oscillatory Dynamics Mediate Developmental Improvement in Motor Performance.

机构信息

Department of Neurological Sciences, University of Nebraska Medical Center (UNMC), Omaha, NE, USA.

Cognitive Neuroscience of Development and Aging (CoNDA) Center, UNMC, Omaha, NE, USA.

出版信息

Cereb Cortex. 2020 Nov 3;30(12):6405-6414. doi: 10.1093/cercor/bhaa199.

DOI:10.1093/cercor/bhaa199
PMID:32705142
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7609946/
Abstract

Numerous recent studies have sought to determine the developmental trajectories of motor-related oscillatory responses from youth to adulthood. However, most of this work has relied on simple movements, and rarely have these studies linked developmental neural changes with maturational improvements in motor performance. In this study, we recorded magnetoencephalography during a complex finger-tapping task in a large sample of 107 healthy youth aged 9-15 years old. The relationships between region-specific neural activity, age, and performance metrics were examined using structural equation modeling. We found strong developmental effects on behavior and beta oscillatory activity during movement planning, as well as associations between planning-related beta activity and activity within the same region during the movement execution period. However, when all factors were tested, we found that only right parietal cortex beta dynamics mediated the relationship between age and performance on the task. These data suggest that strong, sustained beta activity within the right parietal cortex enhances motor performance, and that these sustained oscillations develop through childhood into early adolescence. In sum, these are the first data to link developmental trajectories in beta oscillatory dynamics with distinct motor performance metrics and implicate the right parietal cortex as a crucial hub in movement execution.

摘要

许多最近的研究试图确定从青少年到成年期与运动相关的振荡反应的发展轨迹。然而,大多数此类研究依赖于简单的运动,并且很少有研究将发育中的神经变化与运动表现的成熟度提高联系起来。在这项研究中,我们在一个由 107 名健康青少年组成的大样本中记录了在复杂手指敲击任务期间的脑磁图。使用结构方程模型检查了特定区域的神经活动、年龄和表现指标之间的关系。我们发现,在运动规划期间,行为和β振荡活动具有很强的发育效应,以及与规划相关的β活动与运动执行期间同一区域内的活动之间存在关联。然而,当测试所有因素时,我们发现仅右顶叶皮层β动力学介导了年龄与任务表现之间的关系。这些数据表明,右顶叶皮层内的强烈、持续的β活动增强了运动表现,并且这些持续的振荡是通过儿童期到青春期早期发展起来的。总之,这些是第一个将β振荡动力学的发展轨迹与特定的运动表现指标联系起来的数据,并暗示右顶叶皮层是运动执行的关键枢纽。