Instability and Spatiotemporal Dynamics of Alternans in Paced Cardiac Tissue
arXiv:cond-mat/0111552 · doi:10.1103/PhysRevLett.88.208101
Abstract
We derive an equation that governs the spatiotemporal dynamics of small amplitude alternans in paced cardiac tissue. We show that a pattern-forming linear instability leads to the spontaneous formation of stationary or traveling waves whose nodes divide the tissue into regions with opposite phase of oscillation of action potential duration. This instability is important because it creates dynamically an heterogeneous electrical substrate for inducing fibrillation if the tissue size exceeds a fraction of the pattern wavelength. We compute this wavelength analytically as a function of three basic length scales characterizing dispersion and inter-cellular electrical coupling.
4 pages, 3 figures, submitted to PRL
Cited by in corpus (18)
- Multiple mechanisms of spiral wave breakup in a model of cardiac electrical activity
- Coupled dynamics of voltage and calcium in paced cardiac cells
- Amplitude equation approach to spatiotemporal dynamics of cardiac alternans
- Dynamical mechanism of atrial fibrillation: a topological approach
- Rate-dependent propagation of cardiac action potentials in a one-dimensional fiber
- Dynamics of conduction blocks in a model of paced cardiac tissue
- Indeterminacy of Spatiotemporal Cardiac Alternans
- Coexisting chaotic and multi-periodic dynamics in a model of cardiac alternans
- Line-Defect Patterns of Unstable Spiral Waves in Cardiac Tissue
- Unidirectional Pinning and Hysteresis of Spatially Discordant Alternans in Cardiac Tissue
- Spatiotemporal Dynamics of Calcium-Driven Cardiac Alternans
- A normal form for excitable media
- Traveling ion channel density waves affected by a conservation law
- Bifurcation analysis of a normal form for excitable media: Are stable dynamical alternans on a ring possible?
- The Dynamics of Sustained Reentry in a Loop Model with Discrete Gap Junction Resistance
- Memory effects, transient growth, and wave breakup in a model of paced atrium
- Predicting the onset of period-doubling bifurcations via dominant eigenvalue extracted from autocorrelation
- Terminating ventricular tachycardia by pacing induced dynamical inhomogeneities in the reentry circuit