匹罗卡品颞叶癫痫大鼠模型癫痫发生的高阶信息分析。

IF 2.7 3区 医学 Q3 NEUROSCIENCES
eNeuro Pub Date : 2025-05-29 Print Date: 2025-05-01 DOI:10.1523/ENEURO.0403-24.2025
Morteza Mirjebreili, Josu Martinez de Aguirre Ibarreta, Daniele Marinazzo, Laetitia Chauvière
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引用次数: 0

摘要

颞叶癫痫(TLE)是一种毁灭性疾病,通常具有耐药性,全球患病率高达1%。很少有治疗疾病的方法;因此,预防已成为卫生工作的优先事项。本研究项目的总体目标是强调在TLE发病前不同阶段的系统动力学,以确定网络动力学轨迹向疾病发病的早期转变。研究人员经常通过跟踪在多个地点记录的信号的动态相互作用来研究集体大脑活动。然而,这些相互作用通常只在成对的大脑区域之间计算,有可能错过三个或更多区域的同时相互作用,这在像TLE这样的网络疾病中是至关重要的。因此,我们建议利用丰富的成年雄性Wistar Han大鼠TL脑电生理信号数据集,及时跟踪TLE动物模型中不同自然行为中高阶信息多胞胎的形成和解除。我们确定了多胞胎的信息内容是协同或冗余的。结果发现,在TLE发病之前,协同和冗余多联体的早期转变主要涉及4个TL脑区产生θ (4-12 Hz)活动。这种转变主要在探索过程中表现出来,这是一种依赖theta的行为,而在休息和睡眠过程中表现得较少。这一特定的变化表明,从一个集成到一个隔离的网络通信转变为TLE发病。意义声明颞叶癫痫(TLE)是一种常见的网络障碍,通常具有耐药性;因此,预防TLE至关重要。本文通过在自然行为过程中使用信息分解技术研究TL内部的集体动态来识别TLE的早期迹象。这种计算方法超越了两两相互作用,因此可能需要用于识别TLE发病的早期生物标志物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-Order Information Analysis of Epileptogenesis in the Pilocarpine Rat Model of Temporal Lobe Epilepsy.

Temporal lobe epilepsy (TLE) is a devastating disease, often pharmacoresistant and with a high prevalence of 1% worldwide. There are a few disease-modifying therapies; thus, prevention has become a health priority. The overarching goal of this research project is to highlight the system's dynamics at different stages before TLE onset to identify an early shift in network dynamics trajectory toward disease onset. Researchers often investigate collective brain activity by tracking dynamical interactions of the signal recorded at multiple sites. However, these interactions are usually only computed between pairs of brain regions, at the risk of missing simultaneous interactions of three or more areas, an aspect that is crucial in a networked disease such as TLE. We thus propose to track, on a rich dataset of electrophysiological brain signals recorded within the temporal lobe (TL) of adult male Wistar Han rats, the formation and dissolution of high-order informational multiplets in time during distinct natural behaviors in an animal model of TLE. We identified the informational content of the multiplets as synergistic or redundant. Results identified an early transition of synergistic and redundant multiplets ahead of TLE onset with the predominant involvement of four TL brain regions in generating theta (4-12 Hz) activity. This shift has been shown predominantly during exploration, a theta-dependent behavior, less during rest and sleep. This specific change suggests a shift in communication from an integrated to a segregated network toward TLE onset.

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来源期刊
eNeuro
eNeuro Neuroscience-General Neuroscience
CiteScore
5.00
自引率
2.90%
发文量
486
审稿时长
16 weeks
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.
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