Multiple mechanisms of spiral wave breakup in a model of cardiac electrical activity
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- 1 September 2002
- journal article
- conference paper
- Published by AIP Publishing in Chaos: An Interdisciplinary Journal of Nonlinear Science
- Vol. 12 (3) , 852-892
- https://doi.org/10.1063/1.1504242
Abstract
It has become widely accepted that the most dangerous cardiac arrhythmias are due to reentrant waves, i.e., electrical wave(s) that recirculate repeatedly throughout the tissue at a higher frequency than the waves produced by the heart’s natural pacemaker (sinoatrial node). However, the complicated structure of cardiac tissue, as well as the complex ionic currents in the cell, have made it extremely difficult to pinpoint the detailed dynamics of these life-threatening reentrant arrhythmias. A simplified ionic model of the cardiac action potential (AP), which can be fitted to a wide variety of experimentally and numerically obtained mesoscopic characteristics of cardiac tissue such as AP shape and restitution of AP duration and conduction velocity, is used to explain many different mechanisms of spiral wave breakup which in principle can occur in cardiac tissue. Some, but not all, of these mechanisms have been observed before using other models; therefore, the purpose of this paper is to demonstrate them using just one framework model and to explain the different parameter regimes or physiological properties necessary for each mechanism (such as high or low excitability, corresponding to normal or ischemic tissue, spiral tip trajectory types, and tissue structures such as rotational anisotropy and periodic boundary conditions). Each mechanism is compared with data from other ionic models or experiments to illustrate that they are not model-specific phenomena. Movies showing all the breakup mechanisms are available at http://arrhythmia.hofstra.edu/breakup and at ftp://ftp.aip.org/epaps/chaos/E-CHAOEH-12-039203/INDEX.html. The fact that many different breakup mechanisms exist has important implications for antiarrhythmic drug design and for comparisons of fibrillation experiments using different species, electromechanical uncoupling drugs, and initiation protocols.Keywords
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This publication has 194 references indexed in Scilit:
- Filament instability and rotational tissue anisotropy: A numerical study using detailed cardiac modelsChaos: An Interdisciplinary Journal of Nonlinear Science, 2001
- Prevalence of Rate-Dependent Behaviors in Cardiac MusclePhysical Review Letters, 1999
- Spatiotemporal complexity of ventricular fibrillation revealed by tissue mass reduction in isolated swine right ventricle. Further evidence for the quasiperiodic route to chaos hypothesis.Journal of Clinical Investigation, 1997
- Chaotic meander of spiral waves in the FitzHugh-Nagumo systemChaos, Solitons, and Fractals, 1995
- Persistent tangled vortex rings in generic excitable mediaNature, 1994
- Euclidean symmetry and the dynamics of rotating spiral wavesPhysical Review Letters, 1994
- Effects of High Frequency Stimulation on Cardiac Tissue with an Inexcitable ObstacleJournal of Theoretical Biology, 1993
- Computer Simulation of Re-entry Sources in Myocardium in Two and Three DimensionsJournal of Theoretical Biology, 1993
- Fiber architecture of the left ventricular wall: An asymptotic analysisCommunications on Pure and Applied Mathematics, 1989
- A computer model of atrial fibrillationPublished by Elsevier ,1964