Influence of electrical coupling on early after depolarizations in ventricular myocytes
暂无分享,去创建一个
J.M. Ferrero | M. Monserrat | N. Thakor | J. Saiz | J. Ferrero | N.V. Thakor | J. Saiz | M. Monserrat | J. Saiz | M. Monserrat | Jose Maria Ferrero
[1] R Lazzara,et al. Bradycardia-dependent triggered activity: relevance to drug-induced multiform ventricular tachycardia. , 1983, Circulation.
[2] P. Ursell,et al. Structural and Electrophysiological Changes in the Epicardial Border Zone of Canine Myocardial Infarcts during Infarct Healing , 1985, Circulation research.
[3] Y. Rudy,et al. Electrophysiologic effects of acute myocardial ischemia: a theoretical study of altered cell excitability and action potential duration. , 1997, Cardiovascular research.
[4] M. Sanguinetti,et al. Two components of cardiac delayed rectifier K+ current. Differential sensitivity to block by class III antiarrhythmic agents , 1990, The Journal of general physiology.
[5] R. Aronson,et al. Mechanism of current-induced early afterdepolarizations in guinea pig ventricular myocytes. , 1994, The American journal of physiology.
[6] C Nordin,et al. Computer model of membrane current and intracellular Ca2+ flux in the isolated guinea pig ventricular myocyte. , 1993, The American journal of physiology.
[7] Paul F. Cranefield,et al. Cardiac Arrhythmias: The Role of Triggered Activity and Other Mechanisms , 1988 .
[8] M J Janse,et al. Electrotonic Interactions across an Inexcitable Region as a Cause of Ectopic Activity in Acute Regional Myocardial Ischemia: A Study in Intact Porcine and Canine Hearts and Computer Models , 1982, Circulation research.
[9] M. Lesh,et al. Effects of simulated potassium blockade on the dynamics of triggered cardiac activity. , 1994, Journal of theoretical biology.
[10] B. Surawicz,et al. Characteristics and Possible Mechanism of Ventricular Arrhythmia Dependent on the Dispersion of Action Potential Durations , 1983, Circulation.
[11] C. Luo,et al. A dynamic model of the cardiac ventricular action potential. II. Afterdepolarizations, triggered activity, and potentiation. , 1994, Circulation research.
[12] G. Kleber. The potential role of Ca2+ for electrical cell-to-cell uncoupling and conduction block in myocardial tissue. , 1992, Basic research in cardiology.
[13] J. Kupersmith,et al. Conduction of early afterdepolarizations in sheep Purkinje fibers and ventricular muscle. An in vitro arrhythmia model. , 1992, Journal of electrocardiology.
[14] D. Noble,et al. Effects of gap junction conductance on dynamics of sinoatrial node cells: two-cell and large-scale network models , 1994, IEEE Transactions on Biomedical Engineering.
[15] K. S. Lee,et al. Membrane activity of class III antiarrhythmic compounds; a comparison between ibutilide, d-sotalol, E-4031, sematilide and dofetilide. , 1993, European journal of pharmacology.
[16] J Kupersmith,et al. Purkinje fibre-papillary muscle interaction in the genesis of triggered activity in a guinea pig model. , 1992, Cardiovascular research.
[17] J. Spear,et al. Cellular electrophysiologic characteristics of chronically infarcted myocardium in dogs susceptible to sustained ventricular tachyarrhythmias. , 1983, Journal of the American College of Cardiology.
[18] J. Kupersmith,et al. Occurrence and transmission of localized repolarization abnormalities in vitro. , 1985, Journal of the American College of Cardiology.
[19] M. Lesh,et al. A model study of propagation of early afterdepolarizations , 1995, IEEE Transactions on Biomedical Engineering.
[20] C. Luo,et al. A model of the ventricular cardiac action potential. Depolarization, repolarization, and their interaction. , 1991, Circulation research.
[21] C. Antzelevitch,et al. Quinidine-induced action potential prolongation, early afterdepolarizations, and triggered activity in canine Purkinje fibers. Effects of stimulation rate, potassium, and magnesium. , 1989, Circulation.
[22] Craig T. January,et al. Early Afterdepolarizations: Mechanism of Induction and Block A Role for L‐Type Ca2+ Current , 1989, Circulation research.
[23] P. Brugada,et al. Early Afterdepolarizations: Role in Conduction Block, “Prolonged Repolarization‐Dependent Reexcitation,” and Tachyarrhythmias in the Human Heart , 1985, Pacing and clinical electrophysiology : PACE.
[24] M. Sanguinetti,et al. Rate-dependent prolongation of cardiac action potentials by a methanesulfonanilide class III antiarrhythmic agent. Specific block of rapidly activating delayed rectifier K+ current by dofetilide. , 1993, Circulation research.
[25] Dependence of Na-K pump current on internal Na+ in mammalian cardiac myocytes. , 1990, The American journal of physiology.
[26] N. El-Sherif,et al. The differential response of normal and ischaemic Purkinje fibres to clofilium, d-sotalol and bretylium. , 1989, Cardiovascular research.
[27] N V Thakor,et al. Simulation of action potentials from metabolically impaired cardiac myocytes. Role of ATP-sensitive K+ current. , 1996, Circulation research.
[28] C. Luo,et al. A dynamic model of the cardiac ventricular action potential. I. Simulations of ionic currents and concentration changes. , 1994, Circulation research.
[29] J.M. Ferrero,et al. Simulation of triggered activity and abnormal automaticity in ventricular myocytes , 1995, Computers in Cardiology 1995.
[30] Y. Rudy,et al. Unidirectional block and reentry of cardiac excitation: a model study. , 1990, Circulation research.
[31] Y Rudy,et al. Electrophysiologic effects of acute myocardial ischemia. A mechanistic investigation of action potential conduction and conduction failure. , 1997, Circulation research.
[32] C Nordin,et al. Computer model of current-induced early afterdepolarizations in guinea pig ventricular myocytes. , 1995, The American journal of physiology.
[33] Y Rudy,et al. Two components of the delayed rectifier K+ current in ventricular myocytes of the guinea pig type. Theoretical formulation and their role in repolarization. , 1995, Circulation research.
[34] Y Rudy,et al. Early afterdepolarizations in cardiac myocytes: mechanism and rate dependence. , 1995, Biophysical journal.
[35] M. Rosen,et al. Effects of pacing on triggered activity induced by early afterdepolarizations. , 1984, Circulation.
[36] R Weingart,et al. Action potential transfer in cell pairs isolated from adult rat and guinea pig ventricles. , 1988, Circulation research.
[37] A. Wilde,et al. Morphology of electrophysiologically identified junctions between Purkinje fibers and ventricular muscle in rabbit and pig hearts. , 1991, Circulation research.
[38] R. W. Joyner,et al. Effects of octanol on canine subendocardial Purkinje-to-ventricular transmission. , 1985, The American journal of physiology.
[39] C. January,et al. A Model for Early Afterdepolarizations: Induction With the Ca2+ Channel Agonist Bay K 8644 , 1988, Circulation research.
[40] C Nordin,et al. Computer model of electrophysiological instability in very small heterogeneous ventricular syncytia. , 1997, The American journal of physiology.
[41] R. Lazzara,et al. Role of Calcium Loading in Early Afterdepolarizations Generated by Cs+ in Canine and Guinea Pig Purkinje Fibers , 1995, Journal of cardiovascular electrophysiology.
[42] P F Cranefield,et al. Action potentials, afterpotentials, and arrhythmias. , 1977, Circulation research.
[43] J. Kupersmith,et al. Marked action potential prolongation as a source of injury current leading to border zone arrhythmogenesis. , 1994, American heart journal.
[44] W Craelius,et al. QTU Prolongation and Polymorphic Ventricular Tachyarrhythmias Due to Bradycardia‐Dependent Early: Afterdepolarizations Afterdepolarizations and Ventricular Arrhythmias , 1988, Circulation research.