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神经团块模型中的爆发性伽马振荡

Bursting gamma oscillations in neural mass models.

作者信息

Nandi Manoj Kumar, Valla Michele, di Volo Matteo

机构信息

Université Claude Bernard Lyon 1, Lyon, Rhône-Alpes, France.

INSERM U1208 Institut Cellule Souche et Cerveau, Bron, France.

出版信息

Front Comput Neurosci. 2024 Aug 30;18:1422159. doi: 10.3389/fncom.2024.1422159. eCollection 2024.

Abstract

Gamma oscillations (30-120 Hz) in the brain are not periodic cycles, but they typically appear in short-time windows, often called oscillatory bursts. While the origin of this bursting phenomenon is still unclear, some recent studies hypothesize its origin in the external or endogenous noise of neural networks. We demonstrate that an exact neural mass model of excitatory and inhibitory quadratic-integrate and fire-spiking neurons theoretically predicts the emergence of a different regime of intrinsic bursting gamma (IBG) oscillations without any noise source, a phenomenon due to collective chaos. This regime is indeed observed in the direct simulation of spiking neurons, characterized by highly irregular spiking activity. IBG oscillations are distinguished by higher phase-amplitude coupling to slower theta oscillations concerning noise-induced bursting oscillations, thus indicating an increased capacity for information transfer between brain regions. We demonstrate that this phenomenon is present in both globally coupled and sparse networks of spiking neurons. These results propose a new mechanism for gamma oscillatory activity, suggesting deterministic collective chaos as a good candidate for the origin of gamma bursts.

摘要

大脑中的伽马振荡(30 - 120赫兹)并非周期性循环,而是通常出现在短时间窗口内,常被称为振荡爆发。虽然这种爆发现象的起源仍不明确,但最近的一些研究推测其起源于神经网络的外部或内源性噪声。我们证明,一个由兴奋性和抑制性二次积分发放神经元组成的精确神经团模型从理论上预测了在没有任何噪声源的情况下,一种不同的内在爆发性伽马(IBG)振荡状态的出现,这是一种由集体混沌导致的现象。这种状态确实在发放神经元的直接模拟中被观察到,其特征是具有高度不规则的发放活动。与噪声诱导的爆发性振荡相比,IBG振荡的特点是与较慢的theta振荡具有更高的相位 - 振幅耦合,这表明大脑区域之间信息传递能力增强。我们证明这种现象在发放神经元的全局耦合和稀疏网络中均存在。这些结果提出了一种伽马振荡活动的新机制,表明确定性集体混沌是伽马爆发起源的一个有力候选因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3140/11392745/e57224107969/fncom-18-1422159-g0001.jpg

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