Markus Kopf, Jan Martini, Christina Stier, Silke Ethofer, Christoph Braun, Yiwen Li Hegner, Niels K Focke, Justus Marquetand, Randolph F Helfrich
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In order to test whether the power spectrum is altered in hyperexcitable states, we recorded resting-state MEG from male and female GE patients (<i>n</i> = 51; 29 females; 28.82 ± 12.18 years; mean ± SD) and age-matched healthy controls (<i>n</i> = 49; 22 females; 32.10 ± 12.09 years). We parametrized the power spectra using FOOOF (\"fitting oscillations and one over <i>f</i>\") to separate oscillatory from aperiodic activity to directly test whether aperiodic activity is systematically altered in GE patients. We further identified IEDs to quantify the temporal dynamics of aperiodic activity around overt epileptic activity. The results demonstrate that aperiodic activity indexes hyperexcitability in GE at the whole-brain level, especially during epochs when no IEDs were present (<i>p</i> = 0.0130; <i>d</i> = 0.52). Upon IEDs, large-scale circuits transiently shifted to a less excitable network state (<i>p</i> = 0.001; <i>d</i> = 0.68). In sum, these results uncover that MEG background activity might index hyperexcitability based on the current brain state and does not rely on the presence of epileptic waveforms.</p>","PeriodicalId":11617,"journal":{"name":"eNeuro","volume":" ","pages":""},"PeriodicalIF":2.7000,"publicationDate":"2024-09-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11376430/pdf/","citationCount":"0","resultStr":"{\"title\":\"Aperiodic Activity Indexes Neural Hyperexcitability in Generalized Epilepsy.\",\"authors\":\"Markus Kopf, Jan Martini, Christina Stier, Silke Ethofer, Christoph Braun, Yiwen Li Hegner, Niels K Focke, Justus Marquetand, Randolph F Helfrich\",\"doi\":\"10.1523/ENEURO.0242-24.2024\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Generalized epilepsy (GE) encompasses a heterogeneous group of hyperexcitability disorders that clinically manifest as seizures. At the whole-brain level, distinct seizure patterns as well as interictal epileptic discharges (IEDs) reflect key signatures of hyperexcitability in magneto- and electroencephalographic (M/EEG) recordings. Moreover, it had been suggested that aperiodic activity, specifically the slope of the 1/<i>ƒ<sup>x</sup></i> decay function of the power spectrum, might index neural excitability. However, it remained unclear if hyperexcitability as encountered at the cellular level directly translates to putative large-scale excitability signatures, amenable to M/EEG. In order to test whether the power spectrum is altered in hyperexcitable states, we recorded resting-state MEG from male and female GE patients (<i>n</i> = 51; 29 females; 28.82 ± 12.18 years; mean ± SD) and age-matched healthy controls (<i>n</i> = 49; 22 females; 32.10 ± 12.09 years). 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引用次数: 0
摘要
全身性癫痫(GE)包括一组临床表现为癫痫发作的高兴奋性疾病。在全脑水平上,独特的癫痫发作模式以及发作间期癫痫放电(IEDs)反映了脑磁图和脑电图(M/EEG)记录中过度兴奋的关键特征。此外,有人认为非周期性活动,特别是功率谱的 1/ƒx 衰减函数的斜率,可能是神经兴奋性的指标。然而,目前仍不清楚细胞水平的过度兴奋性是否可直接转化为适用于 M/EEG 的推定大规模兴奋性特征。为了测试在过度兴奋状态下功率谱是否会发生改变,我们记录了男女 GE 患者(n = 51;29 名女性;28.82 ± 12.18 岁;平均 ± SD)和年龄匹配的健康对照组(n = 49;22 名女性;32.10 ± 12.09 岁)的静息状态 MEG。我们使用 FOOOF 对功率谱进行了参数化,将振荡活动与非周期活动分开,以直接测试 GE 患者的非周期活动是否发生了系统性改变。我们进一步确定了 IED,以量化明显癫痫活动周围的非周期性活动的时间动态。结果表明,非周期性活动在全脑水平上反映了 GE 的过度兴奋性,尤其是在没有出现 IED 的时段(p = 0.0130,d = 0.52)。在发生 IED 时,大规模电路瞬时转向兴奋性较低的网络状态(p = 0.001,d = 0.68)。总之,这些结果揭示了 MEG 背景活动可能会根据当前大脑状态指数化过度兴奋性,而不依赖于癫痫波形的存在。 意义声明 长期以来,人们一直怀疑大脑电活动在过度兴奋性疾病(如癫痫)中会发生系统性改变。迄今为止,人们仍不清楚如何量化病理性非周期性活动。Kopf 等人的研究证明,非周期性 MEG 活动可反映神经过度兴奋性,尤其是在没有癫痫放电的情况下。
Aperiodic Activity Indexes Neural Hyperexcitability in Generalized Epilepsy.
Generalized epilepsy (GE) encompasses a heterogeneous group of hyperexcitability disorders that clinically manifest as seizures. At the whole-brain level, distinct seizure patterns as well as interictal epileptic discharges (IEDs) reflect key signatures of hyperexcitability in magneto- and electroencephalographic (M/EEG) recordings. Moreover, it had been suggested that aperiodic activity, specifically the slope of the 1/ƒx decay function of the power spectrum, might index neural excitability. However, it remained unclear if hyperexcitability as encountered at the cellular level directly translates to putative large-scale excitability signatures, amenable to M/EEG. In order to test whether the power spectrum is altered in hyperexcitable states, we recorded resting-state MEG from male and female GE patients (n = 51; 29 females; 28.82 ± 12.18 years; mean ± SD) and age-matched healthy controls (n = 49; 22 females; 32.10 ± 12.09 years). We parametrized the power spectra using FOOOF ("fitting oscillations and one over f") to separate oscillatory from aperiodic activity to directly test whether aperiodic activity is systematically altered in GE patients. We further identified IEDs to quantify the temporal dynamics of aperiodic activity around overt epileptic activity. The results demonstrate that aperiodic activity indexes hyperexcitability in GE at the whole-brain level, especially during epochs when no IEDs were present (p = 0.0130; d = 0.52). Upon IEDs, large-scale circuits transiently shifted to a less excitable network state (p = 0.001; d = 0.68). In sum, these results uncover that MEG background activity might index hyperexcitability based on the current brain state and does not rely on the presence of epileptic waveforms.
期刊介绍:
An open-access journal from the Society for Neuroscience, eNeuro publishes high-quality, broad-based, peer-reviewed research focused solely on the field of neuroscience. eNeuro embodies an emerging scientific vision that offers a new experience for authors and readers, all in support of the Society’s mission to advance understanding of the brain and nervous system.