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在失神癫痫的基因大鼠模型中,体感皮层和中央中丘脑的频谱及耦合特征可区分发作前和发作间期的5-9赫兹振荡。

Spectral and coupling characteristics of somatosensory cortex and centromedian thalamus differentiate between pre- and inter-ictal 5-9 Hz oscillations in a genetic rat model of absence epilepsy.

作者信息

Nikalexi Eleni, Maksimenko Vladimir, Seidenbecher Thomas, Budde Thomas, Pape Hans-Christian, Lüttjohann Annika

机构信息

Institute of Physiology I, Münster University, Münster, Germany.

Department of Civil and Environmental Engineering, National University of Singapore, Singapore.

出版信息

Neurobiol Dis. 2025 Feb;205:106777. doi: 10.1016/j.nbd.2024.106777. Epub 2024 Dec 24.

Abstract

Spike-wave-discharges (SWD) are the electrophysiological hallmark of absence epilepsy. SWD are generated in the thalamo-cortical network and a seizure onset zone was identified in the somatosensory cortex (S1). We have shown before that inhibition of the centromedian thalamic nucleus (CM) in GAERS rats resulted in a selective suppression of the spike component while rhythmic cortical 5-9 Hz oscillations remained present. Such oscillations are often seen to precede SWD activity in this well-validated genetic rat model of absence epilepsy, but are also seen in seizure-free periods. The present study characterizes the profile of 5-9 Hz oscillations in thalamo-cortical circuits during pre- and inter-ictal states. Here we recorded local-field-potentials in S1, CM and the secondary motor cortex of GAERS. Time-frequency analysis was used to assess spectral power and non-linear-association analysis was used to determine coupling strength and directionality between brain areas. Phase-specific electrical stimulation was used to compare cortical excitability and to assess the risk for epileptic afterdischarges. Coupling strength and spectral power were higher for the inter-ictal compared to the pre-ictal 5-9 Hz oscillations. However, coupling strength during pre-ictal oscillations was higher than during passive wakefulness. Double pulse stimulation during 5-9 Hz oscillations was more likely to induce epileptic afterdischarges compared to stimulation during passive wakefulness. While no overall differences in cortical excitability were revealed, phase-specific differences in excitability were noticed during the oscillation. Our findings indicate that intermediate coupling between S1 and CM favors SWD generation, thereby adding to the previous notion that 5-9 Hz oscillations represent high-risk periods for seizure generation. In general, pre-ictal oscillations display a unique electrophysiological profile in GAERS that might pave the way for qualification as biomarker for SWD generation and seizure prediction.

摘要

棘慢波放电(SWD)是失神性癫痫的电生理标志。SWD产生于丘脑皮质网络,且在躯体感觉皮层(S1)中确定了一个癫痫发作起始区。我们之前已经表明,在遗传失神癫痫大鼠(GAERS)中抑制中央中核(CM)会导致棘波成分的选择性抑制,而有节律的皮层5-9Hz振荡仍然存在。在这个经过充分验证的失神癫痫遗传大鼠模型中,这种振荡常在SWD活动之前出现,但在无发作期也可见到。本研究描述了发作前和发作间期丘脑皮质回路中5-9Hz振荡的特征。在这里,我们记录了GAERS的S1、CM和次级运动皮层的局部场电位。使用时频分析来评估频谱功率,并使用非线性关联分析来确定脑区之间的耦合强度和方向性。使用相位特异性电刺激来比较皮层兴奋性,并评估癫痫后放电的风险。与发作前的5-9Hz振荡相比,发作间期的耦合强度和频谱功率更高。然而,发作前振荡期间的耦合强度高于被动清醒期间。与被动清醒期间的刺激相比,在进行5-9Hz振荡期间进行双脉冲刺激更有可能诱发癫痫后放电。虽然未发现皮层兴奋性的总体差异,但在振荡期间注意到了兴奋性的相位特异性差异。我们的研究结果表明,S1和CM之间的中等耦合有利于SWD的产生,从而进一步支持了之前的观点,即5-9Hz振荡代表癫痫发作产生的高风险期。一般来说,发作前振荡在GAERS中表现出独特的电生理特征,这可能为将其鉴定为SWD产生和癫痫发作预测的生物标志物铺平道路。

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