抑制性神经元变异性在耦合网络之间调制相位多样性中的作用。

IF 3.2 2区 数学 Q1 MATHEMATICS, APPLIED
Chaos Pub Date : 2025-09-01 DOI:10.1063/5.0271348
Katiele V P Brito, Joana M G L Silva, Claudio R Mirasso, Fernanda S Matias
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引用次数: 0

摘要

神经元异质性是神经系统中普遍存在的一种现象,其特征是大量的尖峰神经元模式。特别是,大脑在抑制性神经元之间表现出强烈的变异性。尽管大脑区域之间存在巨大的神经元异质性,这在原则上可能会由于神经元内在特性的差异而降低同步性,但皮层区域在各种认知任务中一致地振荡。因此,神经元异质性的功能意义仍然是一个积极研究的课题。以往的研究通常只关注异质性在一个种群动态特性中的作用。在这里,我们探讨了不同类型的抑制性神经元如何促进两个皮质区域之间相关系的多样性。这项研究揭示了局部特性的潜在影响,如神经元的变异性,对大脑远端区域之间的交流。我们发现同质和异质抑制网络都可以表现出相多样性和非直觉机制,如预期同步(as)和相双稳定性。有人提出,双稳态阶段可能与双稳态感知有关,比如在Necker立方体中,大脑在静态图像的两种解释之间交替。此外,我们还证明了异质性扩大了零滞后同步和双稳定的区域。我们还证明了控制抑制异质性的参数调节了从通常的延迟同步状态(DS)到AS的转变。最后,我们表明抑制异质性驱动自由运行种群的内部动态。因此,我们提出了一种可能的机制来解释DS-AS何时通过零滞后同步或双稳态发生转变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of inhibitory neuronal variability in modulating phase diversity between coupled networks.

Neuronal heterogeneity, characterized by a multitude of spiking neuronal patterns, is a widespread phenomenon throughout the nervous system. In particular, the brain exhibits strong variability among inhibitory neurons. Despite the huge neuronal heterogeneity across brain regions, which in principle could decrease synchronization due to differences in intrinsic neuronal properties, cortical areas coherently oscillate during various cognitive tasks. Therefore, the functional significance of neuronal heterogeneity remains a subject of active investigation. Previous studies typically focus on the role of heterogeneity in the dynamic properties of only one population. Here, we explore how different types of inhibitory neurons can contribute to the diversity of the phase relations between two cortical areas. This research sheds light on the potential impact of local properties, such as neuronal variability, on communication between distant brain regions. We show that both homogeneous and heterogeneous inhibitory networks can exhibit phase diversity and nonintuitive regimes such as anticipated synchronization (AS) and phase bistability. It has been proposed that the bistable phase could be related to bistable perception, such as in the Necker cube, where the brain alternates between two interpretations of a static image. Moreover, we show that heterogeneity enlarges the region of zero-lag synchronization and bistability. We also demonstrate that the parameter controlling inhibitory heterogeneity modulates the transition from the usual delayed synchronization regime (DS) to AS. Finally, we show that inhibitory heterogeneity drives the internal dynamics of the free-running population. Therefore, we suggest a possible mechanism to explain when the DS-AS transition occurs via zero-lag synchronization or bistability.

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来源期刊
Chaos
Chaos 物理-物理:数学物理
CiteScore
5.20
自引率
13.80%
发文量
448
审稿时长
2.3 months
期刊介绍: Chaos: An Interdisciplinary Journal of Nonlinear Science is a peer-reviewed journal devoted to increasing the understanding of nonlinear phenomena and describing the manifestations in a manner comprehensible to researchers from a broad spectrum of disciplines.
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