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Patterns of brain oscillations across different electrode montages in transcranial pulsed current stimulation

机译:经颅脉冲电流刺激中不同电极蒙太奇的大脑振荡模式

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摘要

Transcranial pulsed current stimulation (tPCS) is a neuromodulatory technique that has been studied in the last decade. Several parameters have been assessed independently to optimize the effects. Our aim was to explore the effects of tPCS using different montages on cortical brain oscillations indexed by power spectrum and interhemispheric coherence in different electroencephalography frequency bands. Twenty healthy individuals were randomized to receive either active tPCS or sham intervention using the following bilateral montages: ear clip (conventional), ear hook, or mastoid placement. Electroencephalography was recorded before and after the electroencephalography intervention to assess tPCS-induced after effects. Our results showed that active tPCS with bimastoid montage increased significantly alpha absolute power (P =0.0166) and low alpha (P =0.0014) in the frontal region, as well as in the low alpha power spectrum in the central (P =0.0001) and parieto-occipital regions (P =0.0068) compared with the other montages. For interhemispheric coherence analysis, the Kruskal–Wallis test showed a significant main effect of group for theta (P =0.0012) in the frontal region, mainly for ear-clip montage. Our findings evidenced that tPCS delivered through different electrode montages exert different effects on cortical brain oscillations and thus have a different neural signature. We discuss the implications of these findings as well as potential clinical explorations of this technique.
机译:经颅脉冲电流刺激(tPCS)是近十年来研究的一种神经调节技术。已独立评估了几个参数以优化效果。我们的目的是探索使用tmont的不同蒙太奇对不同脑电图谱频带中功率谱和半球相干指数所指示的皮质脑振荡的影响。使用以下双侧蒙太奇,将20名健康个体随机接受主动tPCS或假手术干预:耳夹(常规),耳钩或乳突放置。脑电图干预前后记录脑电图,以评估tPCS诱发的后效应。我们的结果表明,活动性tPCS与双乳突体蒙太奇在额叶区域以及中央的低α功率谱中(P = 0.0001)显着增加了额叶的α绝对功率(P = 0.0166)和低α(P = 0.0014)。与其他蒙太奇相比,顶枕区(P = 0.0068)。对于半球之间的相干性分析,Kruskal–Wallis检验显示了额叶组(P = 0.0012)在额叶区域的主要影响,主要是对耳夹蒙太奇的影响。我们的发现证明,通过不同的电极蒙太奇传递的tPCS对皮质脑部振荡产生不同的影响,因此具有不同的神经特征。我们讨论了这些发现的含义以及该技术的潜在临床探索。

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