Extracellular proton depression of peak and late Na⁺ current in the canine left ventricle.
暂无分享,去创建一个
Charles Antzelevitch | Jonathan M Cordeiro | J. M. Di Diego | C. Antzelevitch | J. Cordeiro | José M Di Diego | Lisa Murphy | Danielle Renodin | L. Murphy | Danielle Renodin
[1] E. Carmeliet. Cardiac ionic currents and acute ischemia: from channels to arrhythmias. , 1999, Physiological reviews.
[2] M J Janse,et al. Potassium accumulation in the globally ischemic mammalian heart. A role for the ATP-sensitive potassium channel. , 1990, Circulation research.
[3] D. Zipes,et al. Effect of drugs on conduction delay and incidence of ventricular arrhythmias induced by acute coronary occlusion in dogs. , 1977, The American journal of cardiology.
[4] Gregery T. Buzzard,et al. Identification of IKr Kinetics and Drug Binding in Native Myocytes , 2009, Annals of Biomedical Engineering.
[5] Godfrey L. Smith,et al. Acidosis inhibits spontaneous activity and membrane currents in myocytes isolated from the rabbit atrioventricular node. , 2009, Journal of molecular and cellular cardiology.
[6] S. Seino,et al. Molecular Basis of Electrocardiographic ST-Segment Elevation , 2000, Circulation research.
[7] E. Carmeliet,et al. Modulation of transient outward current by extracellular protons and Cd2+ in rat and human ventricular myocytes , 1998, The Journal of physiology.
[8] R Wilders,et al. Effects of ischemia on discontinuous action potential conduction in hybrid pairs of ventricular cells. , 1999, Circulation.
[9] R. Myerburg,et al. Role of cardiac ATP-regulated potassium channels in differential responses of endocardial and epicardial cells to ischemia. , 1991, Circulation research.
[10] P W Gage,et al. Hypoxia increases persistent sodium current in rat ventricular myocytes. , 1996, The Journal of physiology.
[11] Charles Antzelevitch,et al. Cellular and subcellular alternans in the canine left ventricle. , 2007, American journal of physiology. Heart and circulatory physiology.
[12] R. London,et al. Decreased intracellular pH is not due to increased H+ extrusion in preconditioned rat hearts. , 1997, American journal of physiology. Heart and circulatory physiology.
[13] David K. Jones,et al. Turret Histidines in pH Modulation of the Cardiac Voltage-Gated Sodium Channel , 2011 .
[14] Yi H. Zhang,et al. Acidosis Impairs the Protective Role of hERG K+ Channels Against Premature Stimulation , 2010, Journal of cardiovascular electrophysiology.
[15] L L Isom,et al. Sodium channels as macromolecular complexes: implications for inherited arrhythmia syndromes. , 2005, Cardiovascular research.
[16] R. Ramirez,et al. Modulation of Ca2+ Release in Cardiac Myocytes by Changes in Repolarization Rate: Role of Phase-1 Action Potential Repolarization in Excitation-Contraction Coupling , 2002 .
[17] C Antzelevitch,et al. Larger late sodium conductance in M cells contributes to electrical heterogeneity in canine ventricle. , 2001, American journal of physiology. Heart and circulatory physiology.
[18] J. T. Hulme,et al. Effect of acidosis on transient outward potassium current in isolated rat ventricular myocytes. , 2000, American Journal of Physiology. Heart and Circulatory Physiology.
[19] R. Myerburg,et al. Simultaneous recording of action potentials from endocardium and epicardium during ischemia in the isolated cat ventricle: relation of temporal electrophysiologic heterogeneities to arrhythmias. , 1986, Circulation.
[20] C Antzelevitch,et al. Functionally distinct sodium channels in ventricular epicardial and endocardial cells contribute to a greater sensitivity of the epicardium to electrical depression. , 2008, American journal of physiology. Heart and circulatory physiology.
[21] C. Antzelevitch,et al. Transmural heterogeneity of calcium activity and mechanical function in the canine left ventricle. , 2004, American journal of physiology. Heart and circulatory physiology.
[22] D. Kass,et al. Ionic mechanism of action potential prolongation in ventricular myocytes from dogs with pacing-induced heart failure. , 1996, Circulation research.
[23] Jonathan M Cordeiro,et al. Comparison of K+ currents in cardiac Purkinje cells isolated from rabbit and dog. , 2007, Journal of molecular and cellular cardiology.
[24] D P Zipes,et al. Different electrophysiological responses of canine endocardium and epicardium to combined hyperkalemia, hypoxia, and acidosis. , 1980, Circulation research.
[25] G. Couper,et al. Role of acidosis in early contractile dysfunction during ischemia: evidence from pHo measurements. , 1984, The American journal of physiology.
[26] M. Czubryt,et al. A model of low-flow ischemia and reperfusion in single, beating adult cardiomyocytes. , 1999, The American journal of physiology.
[27] C. Orchard,et al. Electrophysiological response of rat ventricular myocytes to acidosis. , 2002, American journal of physiology. Heart and circulatory physiology.
[28] W. Lederer,et al. Adenosine triphosphate-sensitive potassium channels in the cardiovascular system. , 1991, The American journal of physiology.
[29] C. Antzelevitch,et al. Extracellular Proton Modulation of Peak and Late Sodium Current in the Canine Left Ventricle , 2011 .
[30] G. Ferrier,et al. Verapamil prevents slowing of transmural conduction and suppresses arrhythmias in an isolated guinea pig ventricular model of ischemia and reperfusion. , 1992, Circulation research.
[31] J. Cordeiro,et al. Simulated ischaemia and reperfusion in isolated guinea pig ventricular myocytes. , 1994, Cardiovascular research.
[32] A. Brown,et al. Effect of extracellular pH on sodium current in isolated, single rat ventricular cells , 2005, The Journal of Membrane Biology.
[33] E. Carmeliet. A fuzzy subsarcolemmal space for intracellular Na+ in cardiac cells? , 1992, Cardiovascular research.
[34] W. Zang,et al. Effects of ischaemia‐mimetic factors on isolated rat ventricular myocytes , 2005, Experimental physiology.
[35] J. Cordeiro,et al. Larger dispersion of INa in female dog ventricle as a mechanism for gender-specific incidence of cardiac arrhythmias. , 2009, Cardiovascular research.
[36] C. Antzelevitch,et al. Differences in the Electrophysiological Response of Canine Ventricular Epicardium and Endocardium to Ischemia Role of the Transient Outward Current , 1993, Circulation.
[37] W. Giles,et al. Effects of action potential duration on excitation-contraction coupling in rat ventricular myocytes. Action potential voltage-clamp measurements. , 1995, Circulation research.
[38] D. Saint. The Role of the Persistent Na+ Current During Cardiac Ischemia and Hypoxia , 2006, Journal of cardiovascular electrophysiology.
[39] Pawel Swietach,et al. Proton Permeation Through the Myocardial Gap Junction , 2003, Circulation research.
[40] Divergent action potential morphologies reveal nonequilibrium properties of human cardiac Na channels. , 2004, Cardiovascular research.
[41] Yoram Rudy,et al. Rate Dependence and Regulation of Action Potential and Calcium Transient in a Canine Cardiac Ventricular Cell Model , 2004, Circulation.
[42] M. Lazdunski,et al. The sodium/hydrogen exchange system in cardiac cells: its biochemical and pharmacological properties and its role in regulating internal concentrations of sodium and internal pH. , 1985, Journal of molecular and cellular cardiology.