Sarcoplasmic reticulum Ca(2+) release causes myocyte depolarization. Underlying mechanism and threshold for triggered action potentials.
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[1] K. Sipido,et al. Two components of [Ca2+]i‐activated Cl‐ current during large [Ca2+]i transients in single rabbit heart Purkinje cells. , 1995, The Journal of physiology.
[2] T Takamatsu,et al. Calcium waves in mammalian heart: quantification of origin, magnitude, waveform, and velocity , 1990, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[3] Craig T. January,et al. Early Afterdepolarizations: Mechanism of Induction and Block A Role for L‐Type Ca2+ Current , 1989, Circulation research.
[4] Donald M. Bers,et al. Control of Maximum Sarcoplasmic Reticulum Ca Load in Intact Ferret Ventricular Myocytes , 1998, The Journal of general physiology.
[5] M. Diaz,et al. Ca-activated chloride current and Na-Ca exchange have different timecourses during sarcoplasmic reticulum Ca release in ferret ventricular myocytes , 1998, Pflügers Archiv.
[6] G. Szigeti,et al. Calcium‐activated transient membrane currents are carried mainly by chloride ions in isolated atrial, ventricular and Purkinje cells of rabbit heart , 1998, Experimental physiology.
[7] C. Antzelevitch,et al. Afterdepolarizations and Triggered Activity Develop in a Select Population of Cells (M Cells) in Canine Ventricular Myocardium: The Effects of Acetylstrophanthidin and Bay K 8644 , 1991, Pacing and clinical electrophysiology : PACE.
[8] S. Houser,et al. Synchronous Occurrence of Spontaneous Localized Calcium Release From the Sarcoplasmic Reticulum Generates Action Potentials in Rat Cardiac Ventricular Myocytes at Normal Resting Membrane Potential , 1987, Circulation research.
[9] R. Goodrow,et al. I NaCa and I Cl(Ca)contribute to isoproterenol-induced delayed afterdepolarizations in midmyocardial cells. , 1998, American journal of physiology. Heart and circulatory physiology.
[10] E. Niggli. Strontium‐induced creep currents associated with tonic contractions in cardiac myocytes isolated from guinea‐pigs. , 1989, The Journal of physiology.
[11] D. Noble,et al. The arrhythmogenic transient inward current iTI and related contraction in isolated guinea‐pig ventricular myocytes. , 1987, The Journal of physiology.
[12] D M Bers,et al. Reverse mode of the sarcoplasmic reticulum calcium pump and load-dependent cytosolic calcium decline in voltage-clamped cardiac ventricular myocytes. , 2000, Biophysical journal.
[13] R A Bassani,et al. Calibration of indo-1 and resting intracellular [Ca]i in intact rabbit cardiac myocytes. , 1995, Biophysical journal.
[14] D. Bers,et al. Upregulation of Na(+)/Ca(2+) exchanger expression and function in an arrhythmogenic rabbit model of heart failure. , 1999, Circulation research.
[15] S. Matsuoka,et al. Steady-state and dynamic properties of cardiac sodium-calcium exchange. Secondary modulation by cytoplasmic calcium and ATP , 1992, The Journal of general physiology.
[16] W. Wier,et al. Sodium-calcium exchange in heart: membrane currents and changes in [Ca2+]i. , 1987, Science.
[17] R. Egdell,et al. Calcium extrusion during aftercontractions in cardiac myocytes: the role of the sodium-calcium exchanger in the generation of the transient inward current. , 2000, Journal of molecular and cellular cardiology.
[18] R. Tsien,et al. A new generation of Ca2+ indicators with greatly improved fluorescence properties. , 1985, The Journal of biological chemistry.
[19] C. Luo,et al. A dynamic model of the cardiac ventricular action potential. I. Simulations of ionic currents and concentration changes. , 1994, Circulation research.
[20] Mark E. Anderson,et al. Ca2+‐activated non‐selective cation current in rabbit ventricular myocytes , 2000, The Journal of physiology.
[21] D. Bers,et al. Surface:volume relationship in cardiac myocytes studied with confocal microscopy and membrane capacitance measurements: species-dependence and developmental effects. , 1996, Biophysical journal.
[22] J L Puglisi,et al. Ca(2+) influx through Ca(2+) channels in rabbit ventricular myocytes during action potential clamp: influence of temperature. , 1999, Circulation research.
[23] E. Erdmann,et al. Alterations of K+ currents in isolated human ventricular myocytes from patients with terminal heart failure. , 1993, Circulation research.
[24] D. Kass,et al. Ionic mechanism of action potential prolongation in ventricular myocytes from dogs with pacing-induced heart failure. , 1996, Circulation research.
[25] R A Bassani,et al. Relaxation in rabbit and rat cardiac cells: species‐dependent differences in cellular mechanisms. , 1994, The Journal of physiology.
[26] D. Kass,et al. Cellular basis of ventricular arrhythmias and abnormal automaticity in heart failure. , 1999, American Journal of Physiology.
[27] M. Diaz,et al. A measurable reduction of s.r. Ca content follows spontaneous Ca release in rat ventricular myocytes , 1997, Pflügers Archiv.
[28] S. Pogwizd,et al. Nonreentrant mechanisms underlying spontaneous ventricular arrhythmias in a model of nonischemic heart failure in rabbits. , 1995, Circulation.
[29] R. Tsien,et al. Ionic basis of transient inward current induced by strophanthidin in cardiac Purkinje fibres. , 1978, The Journal of physiology.
[30] R Weingart,et al. Role of calcium ions in transient inward currents and aftercontractions induced by strophanthidin in cardiac Purkinje fibres. , 1978, The Journal of physiology.
[31] P. L. Becker,et al. Ca2+-induced current oscillations in rabbit ventricular myocytes. , 1996, Circulation research.
[32] H. Drexler,et al. Gene expression of the cardiac Na(+)-Ca2+ exchanger in end-stage human heart failure. , 1994, Circulation research.
[33] E. Neher,et al. Inward current channels activated by intracellular Ca in cultured cardiac cells , 1981, Nature.
[34] P. Lipp,et al. Transient inward current in guinea‐pig atrial myocytes reflects a change of sodium‐calcium exchange current. , 1988, The Journal of physiology.
[35] D. Bers,et al. Effects of [Ca2+]i, SR Ca2+ load, and rest on Ca2+ spark frequency in ventricular myocytes. , 1997, The American journal of physiology.
[36] S R Shorofsky,et al. L- and T-type Ca2+ channels in canine cardiac Purkinje cells. Single-channel demonstration of L-type Ca2+ window current. , 1992, Circulation research.
[37] Donald M. Bers,et al. Excitation-Contraction Coupling and Cardiac Contractile Force , 2001, Developments in Cardiovascular Medicine.
[38] L. Brunton,et al. Excitation-contraction coupling and cardiac contractile force , 1992 .
[39] P. Levesque,et al. Unitary Cl- channels activated by cytoplasmic Ca2+ in canine ventricular myocytes. , 1996, Circulation research.
[40] A. Zygmunt,et al. Calcium-activated chloride current in rabbit ventricular myocytes. , 1991, Circulation research.
[41] E. Carmeliet. Cardiac ionic currents and acute ischemia: from channels to arrhythmias. , 1999, Physiological reviews.