Analysis of Heterogeneous Cardiac Pacemaker Tissue Models and Traveling Wave Dynamics
Cheng Ly, Seth H. Weinberg

TL;DR
This paper uses phase reduction methods on realistic, heterogeneous cardiac pacemaker tissue models to analyze and predict complex wave dynamics, synchronization, and irregular behaviors in sinoatrial node simulations.
Contribution
It introduces a phase reduction approach to large-scale, heterogeneous pacemaker tissue models, enabling efficient analysis of wave dynamics and stability.
Findings
Large-scale simulations show diverse wave behaviors including synchronization and traveling waves.
Phase reduction models accurately predict wave frequencies and propagation directions.
Parameter regimes of irregular electrical activity are identified.
Abstract
The sinoatrial-node (SAN) is a complex heterogeneous tissue that generates a stable rhythm in healthy hearts, yet a general mechanistic explanation for when and how this tissue remains stable is lacking. Although computational and theoretical analyses could elucidate these phenomena, such methods have rarely been used in realistic (large-dimensional) gap-junction coupled heterogeneous pacemaker tissue models. In this study, we adapt a recent model of pacemaker cells (Severi et al. 2012), incorporating biophysical representations of ion channel and intracellular calcium dynamics, to capture physiological features of a heterogeneous population of pacemaker cells, in particular "center" and "peripheral" cells with distinct intrinsic frequencies and action potential morphology. Large-scale simulations of the SAN tissue, represented by a heterogeneous tissue structure of pacemaker cells,…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Cardiac electrophysiology and arrhythmias · stochastic dynamics and bifurcation
