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Published on: September 10, 2015
Synchronization of spatially discordant voltage and calcium alternans in cardiac tissue
Chunli Huang1,2, Zhen Song3, Zhilin Qu2,4
1School of Mathematics and Statistics, Guangdong University of Foreign Studies, Guangzhou 510420, China.
Insights
Cardiac alternans (SDA) synchronization depends on calcium (Ca) and voltage (APD) subsystem stability and coupling. Synchronization can be spontaneous or initial-condition dependent, influencing heart rhythm dynamics.
Area of Science:
- * Cardiac electrophysiology
- * Nonlinear dynamics
- * Computational biology
Background:
- * The heart functions as an excitable medium, relying on membrane potential depolarization and calcium (Ca) dynamics for contraction.
- * Bidirectional coupling exists between voltage and Ca, influencing cardiac action potential and Ca cycling.
- * Spatially discordant alternans (SDA) in action potential duration (APD) and Ca amplitude are complex spatiotemporal dynamics observed in cardiac tissue, but their formation and synchronization mechanisms are not fully understood.
Purpose of the Study:
- * To investigate the mechanisms underlying the formation, stability, and synchronization of APD-SDA and Ca-SDA patterns.
- * To elucidate the roles of voltage and Ca subsystem instabilities and their coupling in SDA dynamics.
- * To provide mechanistic insights into experimental observations of APD-SDA and Ca-SDA.
Main Methods:
- * Analytical and computational investigations using cardiac tissue models.
- * Models include amplitude equations, coupled iterated maps, and reaction-diffusion equations with detailed ionic models.
- * Analysis of voltage and Ca subsystem dynamics, coupling strengths, and spatial scales.
Main Results:
- * When the Ca subsystem is stable, Ca-SDA patterns synchronize with APD-SDA patterns.
- * When the Ca subsystem is unstable, synchronization depends on subsystem stabilities, coupling strengths, and initial Ca-SDA spatial scales.
- * Spontaneous synchronization is favored by increased APD instability, reduced Ca instability, and stronger coupling; initial-condition dependent synchronization is favored by larger initial Ca-SDA clusters under specific instability conditions.
- * Synchronized patterns can exhibit in-phase, antiphase, or quasiperiodic locking based on the APD-Ca coupling relationship.
Conclusions:
- * The study reveals distinct mechanisms for spontaneous and initial-condition dependent synchronization of APD-SDA and Ca-SDA.
- * Findings highlight the critical role of the relative stabilities of the voltage and calcium subsystems and their coupling strengths.
- * The results offer a mechanistic understanding of complex cardiac alternans dynamics observed in experimental settings.
Abstract:
The heart is an excitable medium which is excited by membrane potential depolarization and propagation. Membrane potential depolarization brings in calcium (Ca) through the Ca channels to trigger intracellular Ca release for contraction of the heart. Ca also affects voltage via Ca-dependent ionic currents, and thus, voltage and Ca are bidirectionally coupled. It has been shown that the voltage subsystem or the Ca subsystem can generate its own dynamical instabilities which are affected by their bidirectional couplings, leading to complex dynamics of action potential and Ca cycling. Moreover, the dynamics become spatiotemporal in tissue in which cells are diffusively coupled through voltage. A widely investigated spatiotemporal dynamics is spatially discordant alternans (SDA) in which action potential duration (APD) or Ca amplitude exhibits temporally period-2 and spatially out-of-phase patterns, i.e., APD-SDA and Ca-SDA patterns, respectively. However, the mechanisms of formation, stability, and synchronization of APD-SDA and Ca-SDA patterns remain incompletely understood. In this paper, we use cardiac tissue models described by an amplitude equation, coupled iterated maps, and reaction-diffusion equations with detailed physiology (the ionic model) to perform analytical and computational investigations. We show that, when the Ca subsystem is stable, the Ca-SDA pattern always follows the APD-SDA pattern, and thus, they are always synchronized. When the Ca subsystem is unstable, synchronization of APD-SDA and Ca-SDA patterns depends on the stabilities of both subsystems, their coupling strengths, and the spatial scales of the initial Ca-SDA patterns. Spontaneous (initial condition-independent) synchronization is promoted by enhancing APD instability and reducing Ca instability as well as stronger Ca-to-APD and APD-to-Ca coupling, a pattern formation caused by dynamical instabilities. When Ca is more unstable and APD is less unstable or APD-to-Ca coupling is weak, synchronization of APD-SDA and Ca-SDA patterns is promoted by larger initially synchronized Ca-SDA clusters, i.e., initial condition-dependent synchronization. The synchronized APD-SDA and Ca-SDA patterns can be locked in-phase, antiphase, or quasiperiodic depending on the coupling relationship between APD and Ca. These theoretical and simulation results provide mechanistic insights into the APD-SDA and Ca-SDA dynamics observed in experimental studies.
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