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低频电刺激可降低人脑皮质兴奋性。

Low-frequency electrical stimulation reduces cortical excitability in the human brain.

机构信息

Epilepsy Center, Medical Center-University of Freiburg, Faculty of Medicine, University of Freiburg, Freiburg, Germany; Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany; BrainLinks-BrainTools, University of Freiburg, Freiburg, Germany.

Department of Neurology, Charité- Universitätsmedizin Berlin, Berlin, Germany; Berlin Institute of Health, Berlin, Germany; Center for Stroke Research Berlin, Berlin, Germany.

出版信息

Neuroimage Clin. 2021;31:102778. doi: 10.1016/j.nicl.2021.102778. Epub 2021 Jul 28.

Abstract

Effective seizure control remains challenging for about 30% of epilepsy patients who are resistant to present-day pharmacotherapy. Novel approaches that not only reduce the severity and frequency of seizures, but also have limited side effects are therefore desirable. Accordingly, various neuromodulation approaches such as cortical electrical stimulation have been implemented to reduce seizure burden; however, the underlying mechanisms are not completely understood. Given that the initiation and spread of epileptic seizures critically depend on cortical excitability, understanding the neuromodulatory effects of cortical electrical stimulation on cortical excitability levels is paramount. Based on observations that synchronization in the electrocorticogram closely tracks brain excitability level, the effects of low-frequency (1 Hz) intracranial brain stimulation on the levels of cortical phase synchronization before, during, and after 1 Hz electrical stimulation were assessed in twelve patients. Analysis of phase synchronization levels across three broad frequency bands (1-45 Hz, 55-95 Hz, and 105-195 Hz) revealed that in patients with stimulation sites in the neocortex, phase synchronization levels were significantly reduced within the 55-95 Hz and 105-195 Hz bands during post-stimulation intervals compared to baseline; this effect persisted for at least 30 min post-stimulation. Similar effects were observed when phase synchronization levels were examined in the classic frequency bands, whereby a significant reduction was found during the post-stimulation intervals in the alpha, beta, and gamma bands. The anatomical extent of these effects was then assessed. Analysis of the results from six patients with intracranial electrodes in both hemispheres indicated that reductions in phase synchronization in the 1-45 Hz and 55-95 Hz frequency ranges were more prominent in the stimulated hemisphere. Overall, these findings demonstrate that low-frequency electrical stimulation reduces phase synchronization and hence cortical excitability in the human brain. Low-frequency stimulation of the epileptic focus may therefore contribute to the prevention of impending epileptic seizures.

摘要

对于约 30%对目前的药物治疗有抗药性的癫痫患者来说,有效控制癫痫仍然具有挑战性。因此,需要寻找不仅能降低癫痫发作的严重程度和频率,而且副作用有限的新方法。因此,已经实施了各种神经调节方法,如皮质电刺激,以减轻癫痫发作的负担;然而,其潜在机制尚不完全清楚。鉴于癫痫发作的起始和传播严重依赖于皮质兴奋性,了解皮质电刺激对皮质兴奋性水平的神经调节作用至关重要。基于电皮质图中的同步性紧密跟踪大脑兴奋性水平的观察结果,在 12 名患者中评估了低频(1 Hz)颅内脑刺激对 1 Hz 电刺激前后皮质相位同步水平的影响。对三个宽频带(1-45 Hz、55-95 Hz 和 105-195 Hz)的相位同步水平进行分析的结果表明,在刺激部位位于新皮质的患者中,与基线相比,在刺激后间隔内,55-95 Hz 和 105-195 Hz 频带内的相位同步水平显著降低;这种效应持续至少 30 分钟。当在经典频带中检查相位同步水平时,观察到类似的效果,即在刺激后间隔中,alpha、beta 和 gamma 频带中的相位同步水平明显降低。然后评估了这些效果的解剖范围。对 6 名患者双侧半球颅内电极的结果进行分析表明,在刺激半球中,1-45 Hz 和 55-95 Hz 频带中的相位同步降低更为明显。总的来说,这些发现表明低频电刺激降低了人类大脑的相位同步性,从而降低了皮质兴奋性。因此,癫痫灶的低频刺激可能有助于预防即将发生的癫痫发作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be29/8358685/e7c9f4e30d16/gr1.jpg

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