首页> 美国卫生研究院文献>The Journal of Neuroscience >EEG-Guided Transcranial Magnetic Stimulation Reveals Rapid Shifts in Motor Cortical Excitability during the Human Sleep Slow Oscillation
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EEG-Guided Transcranial Magnetic Stimulation Reveals Rapid Shifts in Motor Cortical Excitability during the Human Sleep Slow Oscillation

机译:脑电引导的经颅磁刺激揭示了人类睡眠缓慢振荡过程中运动皮层兴奋性的快速变化。

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摘要

Evoked cortical responses do not follow a rigid input–output function but are dynamically shaped by intrinsic neural properties at the time of stimulation. Recent research has emphasized the role of oscillatory activity in determining cortical excitability. Here we employed EEG-guided transcranial magnetic stimulation (TMS) during non-rapid eye movement sleep to examine whether the spontaneous <1 Hz neocortical slow oscillation (SO) is associated with corresponding fluctuations of evoked responses. Whereas the SO's alternating phases of global depolarization (up-state) and hyperpolarization (down-state) are clearly associated with fluctuations in spontaneous neuronal excitation, less is known about state-dependent shifts in neocortical excitability. In 12 human volunteers, single-pulse TMS of the primary motor cortical hand area (M1HAND) was triggered online by automatic detection of SO up-states and down-states in the EEG. State-dependent changes in cortical excitability were traced by simultaneously recording motor-evoked potentials (MEPs) and TMS-evoked EEG potentials (TEPs). Compared to wakefulness and regardless of SO state, sleep MEPs were smaller and delayed whereas sleep TEPs were fundamentally altered, closely resembling a spontaneous SO. However, both MEPs and TEPs were consistently larger when evoked during SO up-states than during down-states, and ampliudes within each SO state depended on the actual EEG potential at the time and site of stimulation. These results provide first-time evidence for a rapid state-dependent shift in neocortical excitability during a neuronal oscillation in the human brain. We further demonstrate that EEG-guided temporal neuronavigation is a powerful tool to investigate the phase-dependent effects of neuronal oscillations on perception, cognition, and motor control.
机译:诱发的皮层反应并不遵循严格的输入-输出功能,而是在刺激时由内在的神经特性动态塑造。最近的研究强调了振荡活动在确定皮层兴奋性中的作用。在这里,我们在非快速眼动睡眠期间采用了脑电图引导的经颅磁刺激(TMS),以检查自发的<1 Hz新皮层慢振荡(SO)是否与相应的诱发反应波动相关。 SO的全局去极化(上状态)和超极化(下状态)的交替阶段显然与自发性神经元兴奋性的波动相关,而对新皮层兴奋性的状态相关性变化知之甚少。在12名人类志愿者中,通过自动检测EEG中SO的高位和低位,在线触发了主要运动皮层手部区域(M1HAND)的单脉冲TMS。通过同时记录运动诱发电位(MEP)和TMS诱发EEG电位(TEP)追踪皮质兴奋性的状态依赖性变化。与清醒相比,无论SO状态如何,睡眠MEP都较小且延迟,而睡眠TEP则发生了根本改变,非常类似于自发的SO。然而,当在SO处于高态时诱发的MEP和TEP始终比处于下降态时更大,并且每个SO态的量取决于刺激时间和部位的实际EEG电位。这些结果为人脑神经元振荡期间新皮层兴奋性的快速状态依赖性转变提供了首次证据。我们进一步证明,EEG引导的颞神经导航是一种功能强大的工具,可用于研究神经元振荡对感知,认知和运动控制的相位依赖效应。

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