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阿尔法节律如何在特发性全面性癫痫中作用于丘脑-默认模式回路。

How Alpha Rhythm Spatiotemporally Acts Upon the Thalamus-Default Mode Circuit in Idiopathic Generalized Epilepsy.

出版信息

IEEE Trans Biomed Eng. 2021 Apr;68(4):1282-1292. doi: 10.1109/TBME.2020.3026055. Epub 2021 Mar 18.

Abstract

GOAL

Idiopathic generalized epilepsy (IGE) represents generalized spike-wave discharges (GSWD) and distributed changes in thalamocortical circuit. The purpose of this study is to investigate how the ongoing alpha oscillation acts upon the local temporal dynamics and spatial hyperconnectivity in epilepsy.

METHODS

We evaluated the spatiotemporal regulation of alpha oscillations in epileptic state based on simultaneous EEG-fMRI recordings in 45 IGE patients. The alpha-BOLD temporal consistency, as well as the effect of alpha power windows on dynamic functional connectivity strength (dFCS) was analyzed. Then, stable synchronization networks during GSWD were constructed, and the spatial covariation with alpha-based network integration was investigated.

RESULTS

Increased temporal covariation was demonstrated between alpha power and BOLD fluctuations in thalamus and distributed cortical regions in IGE. High alpha power had inhibition effect on dFCS in healthy controls, while in epilepsy, high alpha windows arose along with the enhancement of dFCS in thalamus, caudate and some default mode network (DMN) regions. Moreover, synchronization networks in GSWD-before, GSWD-onset and GSWD-after stages were constructed, and the connectivity strength in prominent hub nodes (precuneus, thalamus) was associated with the spatially disturbed alpha-based network integration.

CONCLUSION

The results indicated spatiotemporal regulation of alpha in epilepsy by means of the increased power and decreased coherence communication. It provided links between alpha rhythm and the altered temporal dynamics, as well as the hyperconnectivity in thalamus-default mode circuit.

SIGNIFICANCE

The combination between neural oscillations and epileptic representations may be of clinical importance in terms of seizure prediction and non-invasive interventions.

摘要

目的

特发性全面性癫痫(IGE)表现为全面性棘慢波放电(GSWD)和丘脑皮质回路的分布性改变。本研究旨在探讨持续的α振荡如何作用于癫痫状态下的局部时间动态和空间超连接。

方法

我们根据 45 例 IGE 患者的 EEG-fMRI 同步记录,评估了癫痫状态下α振荡的时空调节。分析了α-BOLD 时间一致性以及α功率窗口对动态功能连接强度(dFCS)的影响。然后,构建了 GSWD 期间的稳定同步网络,并研究了与基于α的网络整合的空间协变。

结果

在 IGE 中,α功率和 BOLD 波动之间在丘脑和分布的皮质区域表现出增加的时间协变。高α功率对健康对照组的 dFCS 有抑制作用,而在癫痫中,高α窗口伴随着丘脑、尾状核和一些默认模式网络(DMN)区域的 dFCS 增强而出现。此外,构建了 GSWD 前、GSWD 发作和 GSWD 后阶段的同步网络,显著枢纽节点(楔前叶、丘脑)的连接强度与基于空间干扰的α网络整合相关。

结论

结果表明,癫痫中通过增加功率和降低相干性通讯来调节α的时空变化。它提供了α节律与时间动态改变以及丘脑-默认模式回路中超连接之间的联系。

意义

神经振荡与癫痫表现的结合可能在癫痫发作预测和非侵入性干预方面具有临床意义。

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