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结合功率谱和同步性研究儿童失神癫痫脑电图的时空动态传播

Temporal and spatial dynamic propagation of electroencephalogram by combining power spectral and synchronization in childhood absence epilepsy.

作者信息

Zhong Lisha, Wan Jiangzhong, Wu Jia, He Suling, Zhong Xuefei, Huang Zhiwei, Li Zhangyong

机构信息

School of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, Chongqing, China.

School of Medical Information and Engineering, Southwest Medical University, Luzhou, China.

出版信息

Front Neuroinform. 2022 Aug 16;16:962466. doi: 10.3389/fninf.2022.962466. eCollection 2022.

Abstract

OBJECTIVE

During the transition from normal to seizure and then to termination, electroencephalography (EEG) signals have complex changes in time-frequency-spatial characteristics. The quantitative analysis of EEG characteristics and the exploration of their dynamic propagation in this paper would help to provide new biomarkers for distinguishing between pre-ictal and inter-ictal states and to better understand the seizure mechanisms.

METHODS

Thirty-three children with absence epilepsy were investigated with EEG signals. Power spectral and synchronization were combined to provide the time-frequency-spatial characteristics of EEG and analyze the spatial distribution and propagation of EEG in the brain with topographic maps. To understand the mechanism of spatial-temporal evolution, we compared inter-ictal, pre-ictal, and ictal states in EEG power spectral and synchronization network and its rhythms in each frequency band.

RESULTS

Power, frequency, and spatial synchronization are all enhanced during the absence seizures to jointly dominate the epilepsy process. We confirmed that a rapid diffusion at the onset accompanied by the frontal region predominance exists. The EEG power rapidly bursts in 2-4 Hz through the whole brain within a few seconds after the onset. This spatiotemporal evolution is associated with spatial diffusion and brain regions interaction, with a similar pattern, increasing first and then decreasing, in both the diffusion of the EEG power and the connectivity of the brain network during the childhood absence epilepsy (CAE) seizures. Compared with the inter-ictal group, we observed increases in power of delta and theta rhythms in the pre-ictal group ( < 0.05). Meanwhile, the synchronization of delta rhythm decreased while that of alpha rhythm enhanced.

CONCLUSION

The initiation and propagation of CAE seizures are related to the abnormal discharge diffusion and the synchronization network. During the seizures, brain activity is completely changed with the main component delta rhythm. Furthermore, this article demonstrated for the first time that alpha inhibition, which is consistent with the brain's feedback regulation mechanism, is caused by the enhancement of the network connection. Temporal and spatial evolution of EEG is of great significance for the transmission mechanism, clinical diagnosis and automatic detection of absence epilepsy seizures.

摘要

目的

在从正常状态转变为癫痫发作状态然后到发作终止的过程中,脑电图(EEG)信号在时频空间特征方面会发生复杂变化。本文对EEG特征进行定量分析并探索其动态传播,将有助于提供区分发作前期和发作间期状态的新生物标志物,并更好地理解癫痫发作机制。

方法

对33例失神癫痫患儿进行EEG信号研究。结合功率谱和同步性以提供EEG的时频空间特征,并通过地形图分析EEG在大脑中的空间分布和传播。为了解时空演变机制,我们比较了EEG功率谱和同步网络中发作间期、发作前期和发作期状态及其各频段节律。

结果

失神发作期间,功率、频率和空间同步性均增强,共同主导癫痫过程。我们证实发作开始时存在快速扩散且额叶区域占优势。发作开始后几秒内,EEG功率在2 - 4Hz通过全脑迅速爆发。这种时空演变与空间扩散和脑区相互作用有关,在儿童失神癫痫(CAE)发作期间,EEG功率扩散和脑网络连通性均呈现先增加后减少的相似模式。与发作间期组相比,我们观察到发作前期组中δ波和θ波节律功率增加(<0.05)。同时,δ波节律同步性降低而α波节律同步性增强。

结论

CAE发作的起始和传播与异常放电扩散和同步网络有关。发作期间,脑活动随主要成分δ波节律完全改变。此外,本文首次证明与大脑反馈调节机制一致的α波抑制是由网络连接增强引起的。EEG的时空演变对失神癫痫发作的传播机制、临床诊断和自动检测具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ae2/9433125/f584019ceb99/fninf-16-962466-g001.jpg

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