Effects of reduced discrete coupling on filament tension in excitable media.
暂无分享,去创建一个
[1] John J. Tyson,et al. The Dynamics of Scroll Waves in Excitable Media , 1992, SIAM Rev..
[2] K. Showalter,et al. Dynamical Quorum Sensing and Synchronization in Large Populations of Chemical Oscillators , 2009, Science.
[3] Ma Ping,et al. Vortex Turbulence due to the Interplay of Filament Tension and Rotational Anisotropy , 2009 .
[4] Y Rudy,et al. Ionic mechanisms of propagation in cardiac tissue. Roles of the sodium and L-type calcium currents during reduced excitability and decreased gap junction coupling. , 1997, Circulation research.
[5] S. Alonso,et al. Effective medium approach for heterogeneous reaction-diffusion media. , 2009, The Journal of chemical physics.
[6] Vincent Hakim,et al. Scroll waves in isotropic excitable media: linear instabilities, bifurcations, and restabilized states. , 2002, Physical review. E, Statistical, nonlinear, and soft matter physics.
[7] James P. Keener,et al. Re-entry in three-dimensional Fitzhugh-Nagumo medium with rotational anisotropy , 1995 .
[8] Alexander V Panfilov,et al. Influence of diffuse fibrosis on wave propagation in human ventricular tissue. , 2007, Europace : European pacing, arrhythmias, and cardiac electrophysiology : journal of the working groups on cardiac pacing, arrhythmias, and cardiac cellular electrophysiology of the European Society of Cardiology.
[9] O. Steinbock,et al. Negative filament tension of scroll rings in an excitable system. , 2007, Physical review. E, Statistical, nonlinear, and soft matter physics.
[10] M. Bär,et al. Scroll wave instabilities in an excitable chemical medium. , 2008, Physical review letters.
[11] Vladimir K. Vanag,et al. Synchronization of Chemical Micro-oscillators , 2010 .
[12] C. Cabo,et al. Heterogeneous gap junction remodeling stabilizes reentrant circuits in the epicardial border zone of the healing canine infarct: a computational study. , 2006, American journal of physiology. Heart and circulatory physiology.
[13] Kenneth Showalter,et al. Regular and irregular spatial patterns in an immobilized-catalyst Belousov-Zhabotinskii reaction , 1989 .
[14] C. Henriquez,et al. Effect of nonuniform interstitial space properties on impulse propagation: a discrete multidomain model. , 2008, Biophysical journal.
[15] F. Fenton,et al. Multiple mechanisms of spiral wave breakup in a model of cardiac electrical activity. , 2002, Chaos.
[16] S. Strogatz,et al. Singular filaments organize chemical waves in three dimensions: I. Geometrically simple waves , 1983 .
[17] Elizabeth M Cherry,et al. Pulmonary vein reentry--properties and size matter: insights from a computational analysis. , 2007, Heart rhythm.
[18] A. Panfilov,et al. Negative filament tension at high excitability in a model of cardiac tissue. , 2008, Physical review letters.
[19] Francesc Sagués,et al. Taming Winfree Turbulence of Scroll Waves in Excitable Media , 2003, Science.
[20] C. Henriquez,et al. Incorporating Histology into a 3D Microscopic Computer Model of Myocardium to Study Propagation at a Cellular Level , 2010, Annals of Biomedical Engineering.
[21] Tuckerman,et al. Spiral-wave dynamics in a simple model of excitable media: The transition from simple to compound rotation. , 1990, Physical review. A, Atomic, molecular, and optical physics.
[22] A S Mikhailov,et al. Periodic forcing of scroll rings and control of Winfree turbulence in excitable media. , 2006, Chaos.
[23] Markus Bär,et al. Effective medium theory for reaction rates and diffusion coefficients of heterogeneous systems. , 2009, Physical review letters.
[24] Dwight Barkley,et al. Fast Simulations of Waves in Three-Dimensional Excitable Media , 1997 .
[25] Xiaochuan Lu,et al. Disordered plane waves in the transition between target and antitarget patterns. , 2009, Physical review. E, Statistical, nonlinear, and soft matter physics.
[26] V. Fast,et al. Microscopic conduction in cultured strands of neonatal rat heart cells measured with voltage-sensitive dyes. , 1993, Circulation research.
[27] C. Cabo,et al. Extracellular space attenuates the effect of gap junctional remodeling on wave propagation: a computational study. , 2009, Biophysical journal.
[28] R Wilders,et al. Gap junctions in cardiovascular disease. , 2000, Circulation research.
[29] A. V. Panfilopv. Two regimes of the scroll ring drift in the three-dimensional active media , 1987 .
[30] Arun V. Holden,et al. Tension of organizing filaments of scroll waves , 1994, Philosophical Transactions of the Royal Society of London. Series A: Physical and Engineering Sciences.
[31] Y. Rudy,et al. Basic mechanisms of cardiac impulse propagation and associated arrhythmias. , 2004, Physiological reviews.
[32] R C Barr,et al. Electrophysiological effects of remodeling cardiac gap junctions and cell size: experimental and model studies of normal cardiac growth. , 2000, Circulation research.
[33] Negative filament tension in the Luo-Rudy model of cardiac tissue. , 2007, Chaos.
[34] R. Toth,et al. Loss of coherence in a population of diffusively coupled oscillators. , 2006, The Journal of chemical physics.
[35] A. Panfilov,et al. Spiral breakup in an array of coupled cells: the role of the intercellular conductance. , 2002, Physical review letters.
[36] S. Luther,et al. Far field pacing supersedes anti-tachycardia pacing in a generic model of excitable media , 2008 .
[37] Alvin Shrier,et al. Global organization of dynamics in oscillatory heterogeneous excitable media. , 2005, Physical review letters.
[38] Ronald W. Joyner,et al. Discontinuous conduction in the heart , 1998 .
[39] Vadim N. Biktashev,et al. A Three-Dimensional Autowave Turbulence , 1998 .