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Prelude to and resolution of an error: EEG phase synchrony reveals cognitive control dynamics during action monitoring

机译:错误的前奏和解决方案:脑电图相位同步揭示了动作监测过程中的认知控制动态

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摘要

Error-related activity in the medial prefrontal cortex (mPFC) is thought to work in conjunction with lateral prefrontal cortex (lPFC) as a part of an action-monitoring network, where errors signal the need for increased cognitive control. The neural mechanism by which this mPFC-lPFC interaction occurs remains unknown. We hypothesized that transient synchronous oscillations in the theta range reflect a mechanism by which these structures interact. To test this hypothesis, we extracted oscillatory phase and power from current-source-density-transformed electroencephalographic data recorded during a Flanker task. Theta power in the mPFC was diminished on the trial preceding an error and increased immediately after an error, consistent with predictions of an action-monitoring system. These power dynamics appeared to take place over a response-related background of oscillatory theta phase coherence. Theta phase synchronization between FCz (mPFC) and F5/6 (lPFC) sites was robustly increased during error trials. The degree of mPFC-lPFC oscillatory synchronization predicted the degree of mPFC power on error trials, and both of these dynamics predicted the degree of posterror reaction time slowing. Oscillatory dynamics in the theta band may in part underlie a mechanism of communication between networks involved in action monitoring and cognitive control.
机译:内侧前额叶皮层(mPFC)中与错误相关的活动被认为与外侧前额叶皮层(lPFC)一起作为动作监控网络的一部分,其中错误表示需要增强认知控制。发生这种mPFC-1PFC相互作用的神经机制仍然未知。我们假设theta范围内的瞬态同步振荡反映了这些结构相互作用的机制。为了验证该假设,我们从Flanker任务期间记录的电流源密度变换的脑电图数据中提取了振荡相位和功率。发生错误之前,试验中mPFC中的theta功率减小,发生错误后立即增加,与动作监视系统的预测一致。这些功率动力学似乎发生在振荡θ相位相干的响应相关背景下。在错误试验期间,FCz(mPFC)和F5 / 6(lPFC)站点之间的θ相位同步得到了显着提高。 mPFC-1PFC振荡同步的程度预测了错误试验中mPFC功率的程度,而这两个动力学都预测了错误后反应时间变慢的程度。 θ带中的振荡动力学可能部分地是参与动作监测和认知控制的网络之间的通信机制的基础。

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