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遗传性全身性癫痫中癫痫样放电的时间模式。

Temporal patterns of epileptiform discharges in genetic generalized epilepsies.

作者信息

Seneviratne Udaya, Boston Ray C, Cook Mark, D'Souza Wendyl

机构信息

Department of Medicine, St. Vincent's Hospital, University of Melbourne, Melbourne, Australia; Department of Neuroscience, Monash Medical Centre, Melbourne, Australia; School of Clinical Sciences at Monash Health, Department of Medicine, Monash University, Melbourne, Australia.

Department of Medicine, St. Vincent's Hospital, University of Melbourne, Melbourne, Australia.

出版信息

Epilepsy Behav. 2016 Nov;64(Pt A):18-25. doi: 10.1016/j.yebeh.2016.09.018. Epub 2016 Oct 8.

Abstract

OBJECTIVE

We sought to investigate the temporal patterns and sleep-wake cycle-related epileptiform discharges (EDs) in genetic generalized epilepsies (GGEs).

METHODS

We studied 24-hour ambulatory electroencephalography (EEG) recordings of patients with GGE, diagnosed and classified according to the International League against Epilepsy criteria. We manually coded the type of discharge, time of occurrence, duration, and arousal state of each ED. We employed mixed effects Poisson regression modeling to study the temporal distribution of epileptiform discharges. Additionally, we used multinomial regression analysis to explore the significance of the relationship between different states of arousal and types of epileptiform discharges.

RESULTS

We analyzed 6923 EDs from 105 abnormal 24-hour EEGs. Mixed effects Poisson regression analysis demonstrated significant changes in ED counts across time blocks. This distribution was largely influenced by the state of arousal. Generalized fragments (duration<2s) and focal discharges were more frequent during non-REM sleep while paroxysms (duration≥2s) were more frequent in wakefulness. Overall, 67% of epileptiform discharges occurred in non-REM sleep and only 33% occurred in wakefulness. Twenty-four patients (23%) had ED exclusively in sleep. Epileptiform discharges peaked from 23:00 through 07:00h.

SIGNIFICANCE

There is a time-of-day dependency of ED with a significant influence exerted by the state of arousal. Our observations suggest that the generation of epileptiform discharges is not a random process but is the result of complex interactions among biological rhythms such as the sleep-wake cycle and the intrinsic circadian pacemaker. High density of ED in sleep suggests that 24-hour EEG recording with the capture of natural sleep may be more useful than routine EEG to diagnose GGE.

摘要

目的

我们试图研究遗传性全身性癫痫(GGEs)中癫痫样放电(EDs)的时间模式以及与睡眠 - 觉醒周期的关系。

方法

我们研究了根据国际抗癫痫联盟标准诊断和分类的GGE患者的24小时动态脑电图(EEG)记录。我们手动编码了每次ED的放电类型、发生时间、持续时间和觉醒状态。我们采用混合效应泊松回归模型来研究癫痫样放电的时间分布。此外,我们使用多项回归分析来探讨不同觉醒状态与癫痫样放电类型之间关系的重要性。

结果

我们分析了来自105份异常24小时EEG的6923次ED。混合效应泊松回归分析表明,ED计数在不同时间段有显著变化。这种分布在很大程度上受觉醒状态的影响。广泛性片段(持续时间<2秒)和局灶性放电在非快速眼动睡眠期间更频繁,而阵发(持续时间≥2秒)在清醒时更频繁。总体而言,67%的癫痫样放电发生在非快速眼动睡眠中,仅33%发生在清醒时。24名患者(23%)的ED仅出现在睡眠中。癫痫样放电在23:00至07:00达到峰值。

意义

ED存在昼夜时间依赖性,觉醒状态有显著影响。我们的观察结果表明,癫痫样放电的产生不是一个随机过程,而是睡眠 - 觉醒周期和内在昼夜节律起搏器等生物节律之间复杂相互作用的结果。睡眠中ED的高密度表明,记录自然睡眠的24小时EEG可能比常规EEG在诊断GGE方面更有用。

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