The high frequency oscillations in the amygdala, hippocampus, and temporal cortex during mesial temporal lobe epilepsy

IF 3.1 3区 工程技术 Q2 NEUROSCIENCES
Shiwei Song, Yihai Dai, Yutong Yao, Jie Liu, Dezhong Yao, Yifei Cao, Bingling Lin, Yuetong Zheng, Ruxiang Xu, Yan Cui, Daqing Guo
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Abstract

The mesial temporal lobe epilepsy (MTLE) seizures are believed to originate from medial temporal structures, including the amygdala, hippocampus, and temporal cortex. Thus, the seizures onset zones (SOZs) of MTLE locate in these regions. However, whether the neural features of SOZs are specific to different medial temporal structures are still unclear and need more investigation. To address this question, the present study tracked the features of two different high frequency oscillations (HFOs) in the SOZs of these regions during MTLE seizures from 10 drug-resistant MTLE patients, who received the stereo electroencephalography (SEEG) electrodes implantation surgery in the medial temporal structures. Remarkable difference of HFOs features, including the proportions of HFOs contacts, percentages of HFOs contacts with significant coupling and firing rates of HFOs, could be observed in the SOZs among three medial temporal structures during seizures. Specifically, we found that the amygdala might contribute to the generation of MTLE seizures, while the hippocampus plays a critical role for the propagation of MTLE seizures. In addition, the HFOs firing rates in SOZ regions were significantly larger than those in NonSOZ regions, suggesting the potential biomarkers of HFOs for MTLE seizure. Moreover, there existed higher percentages of SOZs contacts in the HFOs contacts than in all SEEG contacts, especially those with significant coupling to slow oscillations, implying that specific HFOs features would help identify the SOZ regions. Taken together, our results displayed the features of HFOs in different medial temporal structures during MTLE seizures, and could deepen our understanding concerning the neural mechanism of MTLE.

Abstract Image

中颞叶癫痫时杏仁核、海马和颞叶皮层的高频振荡
据信,颞叶癫痫(MTLE)的发作源于颞叶内侧结构,包括杏仁核、海马和颞皮层。因此,MTLE 的发作起始区(SOZs)就位于这些区域。然而,SOZs的神经特征是否针对不同的颞叶内侧结构仍不清楚,需要更多的研究。为了解决这个问题,本研究追踪了10名耐药MTLE患者在颞叶内侧结构接受立体脑电图(SEEG)电极植入手术后,在MTLE发作时这些区域的SOZ中出现的两种不同的高频振荡(HFOs)特征。在发作期间,我们可以在三个颞叶内侧结构的SOZs中观察到明显不同的HFOs特征,包括HFOs接触比例、具有显著耦合的HFOs接触比例以及HFOs的点燃率。具体而言,我们发现杏仁核可能有助于MTLE发作的产生,而海马则对MTLE发作的传播起着关键作用。此外,SOZ区域的HFOs发射率明显高于NonSOZ区域,这表明HFOs可能是MTLE发作的生物标志物。此外,HFOs 触点中 SOZs 触点的百分比高于所有 SEEG 触点,尤其是那些与慢振荡有显著耦合的触点,这意味着特定的 HFOs 特征有助于识别 SOZ 区域。综上所述,我们的研究结果显示了MTLE发作时不同颞叶内侧结构的HFOs特征,有助于加深我们对MTLE神经机制的理解。
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来源期刊
Cognitive Neurodynamics
Cognitive Neurodynamics 医学-神经科学
CiteScore
6.90
自引率
18.90%
发文量
140
审稿时长
12 months
期刊介绍: Cognitive Neurodynamics provides a unique forum of communication and cooperation for scientists and engineers working in the field of cognitive neurodynamics, intelligent science and applications, bridging the gap between theory and application, without any preference for pure theoretical, experimental or computational models. The emphasis is to publish original models of cognitive neurodynamics, novel computational theories and experimental results. In particular, intelligent science inspired by cognitive neuroscience and neurodynamics is also very welcome. The scope of Cognitive Neurodynamics covers cognitive neuroscience, neural computation based on dynamics, computer science, intelligent science as well as their interdisciplinary applications in the natural and engineering sciences. Papers that are appropriate for non-specialist readers are encouraged. 1. There is no page limit for manuscripts submitted to Cognitive Neurodynamics. Research papers should clearly represent an important advance of especially broad interest to researchers and technologists in neuroscience, biophysics, BCI, neural computer and intelligent robotics. 2. Cognitive Neurodynamics also welcomes brief communications: short papers reporting results that are of genuinely broad interest but that for one reason and another do not make a sufficiently complete story to justify a full article publication. Brief Communications should consist of approximately four manuscript pages. 3. Cognitive Neurodynamics publishes review articles in which a specific field is reviewed through an exhaustive literature survey. There are no restrictions on the number of pages. Review articles are usually invited, but submitted reviews will also be considered.
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