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首页> 外文期刊>NeuroImage >Low-frequency alternating current stimulation rhythmically suppresses gamma-band oscillations and impairs perceptual performance
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Low-frequency alternating current stimulation rhythmically suppresses gamma-band oscillations and impairs perceptual performance

机译:低频交流刺激有节奏地抑制伽马带振荡并损害感知性能

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摘要

Low frequency oscillations such as alpha (8-12 Hz) are hypothesized to rhythmically gate sensory processing, reflected by 40-100 Hz gamma band activity, via the mechanism of pulsed inhibition. We applied transcranial alternating current stimulation (TACS) at individual alpha frequency (IAF) and flanking frequencies (IAF-4 Hz, IAFthorn4 Hz) to the occipital cortex of healthy human volunteers during concurrent magnetoencephalography (MEG), while participants performed a visual detection task inducing strong gamma-band responses. Occipital (but not retinal) TACS phasically suppressed stimulus-induced gamma oscillations in the visual cortex and impaired target detection, with stronger phase-to-amplitude coupling predicting behavioral impairments. Retinal control TACS ruled out retino-thalamo-cortical entrainment resulting from (subthreshold) retinal stimulation. All TACS frequencies tested were effective, suggesting that visual gamma-band responses can be modulated by a range of low frequency oscillations. We propose that TACS-induced membrane potential modulations mimic the rhythmic change in cortical excitability by which spontaneous low frequency oscillations may eventually exert their impact when gating sensory processing via pulsed inhibition.
机译:诸如α(8-12Hz)之类的低频振荡被假设到通过脉冲抑制的机制反映了40-100Hzγ带活性的节奏栅极感觉处理。在并发磁力摄影(MEG)期间,我们将单个α频率(IAF)和侧翼频率(IAF-4 Hz,IAFthorn4 Hz)应用于单个α频率(IAF)和侧翼频率(IAF-4 Hz,IAFthorn4 Hz),而参与者进行了视觉检测任务诱导强伽马​​带的反应。枕骨(但没有视网膜)TACS在视觉皮层和受损的目标检测中抑制刺激诱导的伽马振荡,具有更强的相位对振幅耦合预测行为损伤。视网膜控制TAC排除了(亚阈值)视网膜刺激所产生的视网膜母鸡 - 皮质夹带。测试的所有TACS频率都是有效的,这表明可以通过一系列低频振荡来调制视觉伽马带响应。我们提出TAC诱导的膜电位调制模仿皮质兴奋性的节律变化,通过该皮质兴奋剂,在通过脉冲抑制时,自发的低频振荡可能最终施加它们的冲击。

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