Fluctuation induced intermittent transitions between distinct rhythms in balanced excitatory-inhibitory spiking networks
arXiv:2501.04037 · doi:10.1016/j.chaos.2025.116321
Abstract
Intermittent transitions, associated with critical dynamics and characterized by power-law distributions, are commonly observed during sleep. These critical behaviors are evident at the microscopic level through neuronal avalanches and at the macroscopic level through transitions between sleep stages. To clarify these empirical observations, models grounded in statistical physics have been proposed. At the mesoscopic level of cortical activity, critical behavior is indicated by the intermittent transitions between various cortical rhythms. For instance, empirical investigations utilizing EEG data from rats have identified intermittent transitions between and rhythms, with the duration of rhythm exhibiting a power-law distribution. However, a dynamic model to account for this phenomenon is currently absent. In this study, we introduce a network of sparsely coupled excitatory and inhibitory populations of quadratic integrate-and-fire (QIF) neurons to demonstrate that intermittent transitions can emerge from the intrinsic fluctuations of a finite-sized system, particularly when the system is positioned near a Hopf bifurcation point, which is a critical point. The resulting power-law distributions and exponents are consistent with empirical observations. Additionally, we illustrate how modifications in network connectivity can affect the power-law exponent by influencing the attractivity and oscillation frequency of the stable limit cycle. Our findings, interpreted through the fundamental dynamics of neuronal networks, provide a plausible mechanism for the generation of intermittent transitions between cortical rhythms, in alignment with the power-law distributions documented in empirical researches.
References in corpus (12)
- Macroscopic description for networks of spiking neurons
- Functional modularity of background activities in normal and epileptic brain networks
- Ising-like dynamics in large-scale functional brain networks
- Dynamics of Sleep-Wake Transitions During Sleep
- Dynamical Entropy Production in Spiking Neuron Networks in the Balanced State
- Transition from asynchronous to oscillatory dynamics in balanced spiking networks with instantaneous synapses
- A reduction methodology for fluctuation driven population dynamics
- Coexistence of fast and slow gamma oscillations in one population of inhibitory spiking neurons
- Conserved Ising Model on the Human Connectome
- Coherent oscillations in balanced neural networks driven by endogenous fluctuations
- Effect of Cauchy noise on a network of quadratic integrate-and-fire neurons with non-Cauchy heterogeneities
- Macroscopic behavior of populations of quadratic integrate-and-fire neurons subject to non-Gaussian white noise