bioRxiv · 10.1101/2022.11.11.516084
An anisotropic network model of inter-cellular coupling for robust simulation of cardiac electrical excitation in structurally complex and heterogeneous large tissue models
Abstract
Remodelling of cardiac tissue structure, including intercellular electrical coupling, is a major determinant of the complex and heterogeneous excitation patterns associated with cardiac arrhythmias. Evaluation of the precise mechanisms by which local tissue structure determines global arrhythmic excitation patterns is a major challenge that may be critically important for the development of effective treatment strategies. Computational modelling is a key tool in the study of cardiac arrhythmias, yet the established approaches for organ-scale modelling are unsuitable to capture the impact of local conduction heterogeneities; a novel approach is required to provide this multi-scale mechanistic insight. We present a fundamentally simple yet powerful approach to simulate electrical excitation in highly heterogeneous whole-heart models that exploits the underlying discreteness of the myocardium. Preliminary simulations demonstrate that this approach can capture lower conduction velocities and reproduce wave breakdown and the development of re-entry in conditions where the established approaches cannot.
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Colman, M. A., Benson, A.. 2022-11-14. An anisotropic network model of inter-cellular coupling for robust simulation of cardiac electrical excitation in structurally complex and heterogeneous large tissue models. https://doi.org/10.1101/2022.11.11.516084
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