Neuromodulatory effects on synchrony and network reorganization in networks of coupled Kuramoto oscillators.

IF 2.2 3区 物理与天体物理 Q2 PHYSICS, FLUIDS & PLASMAS Physical Review E Pub Date : 2024-10-01 DOI:10.1103/PhysRevE.110.044401
Sinan Aktay, Leonard M Sander, Michal Zochowski
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Abstract

Neuromodulatory processes in the brain can critically change signal processing on a cellular level, leading to dramatic changes in network level reorganization. Here, we use coupled nonidentical Kuramoto oscillators to investigate how changes in the shape of phase response curves from Type 1 to Type 2, mediated by varying ACh levels, coupled with activity-dependent plasticity may alter network reorganization. We first show that, when plasticity is absent, the Type 1 networks with symmetric adjacency matrix, as expected, exhibit asynchronous dynamics with oscillators of the highest natural frequency robustly evolving faster in terms of their phase dynamics. However, interestingly, Type 1 networks with an asymmetric connectivity matrix can produce stable synchrony (so-called splay states) with complex phase relationships. At the same time, Type 2 networks synchronize independent of the symmetry of their connectivity matrix, with oscillators locked so that those with higher natural frequency have a constant phase lead as compared to those with lower natural frequency. This relationship establishes a robust mapping between the frequency and oscillators' phases in the network, leading to structure and frequency mapping when plasticity is present. Finally, we show that biologically realistic, phase-locking dependent, connection plasticity naturally produces splay states in Type 1 networks that do not display the structure-frequency reorganization observed in synchronized Type II networks. These results indicate that the formation of splay states in the brain could be a common phenomenon.

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神经调节对耦合仓本振荡器网络的同步性和网络重组的影响
大脑中的神经调节过程会严重改变细胞水平的信号处理,从而导致网络水平重组的巨大变化。在这里,我们使用耦合的非相同仓本振荡器来研究由不同 ACh 水平介导的相位响应曲线从 1 型到 2 型的形状变化,以及活动依赖性可塑性如何改变网络重组。我们首先发现,在没有可塑性的情况下,具有对称邻接矩阵的 1 型网络会像预期的那样表现出异步动态,最高固有频率的振荡器在其相位动态方面稳健地演化得更快。然而,有趣的是,具有非对称邻接矩阵的 1 型网络可以产生具有复杂相位关系的稳定同步(即所谓的 "扩展态")。同时,第二类网络的同步与其连接矩阵的对称性无关,其振荡器被锁定,因此与固有频率较低的振荡器相比,固有频率较高的振荡器具有恒定的相位领先优势。这种关系在网络中的频率和振荡器相位之间建立了稳健的映射关系,从而在存在可塑性时形成结构和频率映射。最后,我们表明,在生物现实中,与相位锁定相关的连接可塑性自然会在第一类网络中产生平展态,而这种平展态并不显示在同步第二类网络中观察到的结构-频率重组。这些结果表明,在大脑中形成分裂状态可能是一种常见现象。
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来源期刊
Physical Review E
Physical Review E PHYSICS, FLUIDS & PLASMASPHYSICS, MATHEMAT-PHYSICS, MATHEMATICAL
CiteScore
4.50
自引率
16.70%
发文量
2110
期刊介绍: Physical Review E (PRE), broad and interdisciplinary in scope, focuses on collective phenomena of many-body systems, with statistical physics and nonlinear dynamics as the central themes of the journal. Physical Review E publishes recent developments in biological and soft matter physics including granular materials, colloids, complex fluids, liquid crystals, and polymers. The journal covers fluid dynamics and plasma physics and includes sections on computational and interdisciplinary physics, for example, complex networks.
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