Arrhythmogenic Current Generation by Myofilament-Triggered Ca2+ Release and Sarcomere Heterogeneity
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[1] K. Campbell,et al. Force-Dependent Recruitment from the Myosin Off State Contributes to Length-Dependent Activation. , 2018, Biophysical journal.
[2] D. Bers,et al. Size Matters: Ryanodine Receptor Cluster Size Affects Arrhythmogenic Sarcoplasmic Reticulum Calcium Release , 2018, Journal of the American Heart Association.
[3] A. McCulloch,et al. An integrative appraisal of mechano-electric feedback mechanisms in the heart. , 2017, Progress in biophysics and molecular biology.
[4] William E Louch,et al. Species-Dependent Mechanisms of Cardiac Arrhythmia: A Cellular Focus , 2017, Clinical Medicine Insights. Cardiology.
[5] S. Campbell,et al. Contributions of Ca2+-Independent Thin Filament Activation to Cardiac Muscle Function. , 2015, Biophysical journal.
[6] A. Noma,et al. A human ventricular myocyte model with a refined representation of excitation-contraction coupling. , 2015, Biophysical journal.
[7] M. Rocchetti,et al. Calcium store stability as an antiarrhythmic endpoint. , 2014, Current pharmaceutical design.
[8] Na Li,et al. Cellular and Molecular Mechanisms of Atrial Arrhythmogenesis in Patients With Paroxysmal Atrial Fibrillation , 2014, Circulation.
[9] C. Ward,et al. X-ROS signaling in the heart and skeletal muscle: stretch-dependent local ROS regulates [Ca²⁺]i. , 2013, Journal of molecular and cellular cardiology.
[10] Thomas L. Daniel,et al. Filament Compliance Influences Cooperative Activation of Thin Filaments and the Dynamics of Force Production in Skeletal Muscle , 2012, PLoS Comput. Biol..
[11] Christopher W Ward,et al. X-ROS Signaling: Rapid Mechano-Chemo Transduction in Heart , 2011, Science.
[12] H. E. Keurs. Electromechanical coupling in the cardiac myocyte; stretch-arrhythmia feedback , 2011, Pflügers Archiv - European Journal of Physiology.
[13] Christian Soeller,et al. Computational modelling of the initiation and development of spontaneous intracellular Ca2+ waves in ventricular myocytes , 2010, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[14] Andrew D McCulloch,et al. Coupling of adjacent tropomyosins enhances cross-bridge-mediated cooperative activation in a markov model of the cardiac thin filament. , 2010, Biophysical journal.
[15] Jacques Ohayon,et al. An integrated formulation of anisotropic force–calcium relations driving spatio-temporal contractions of cardiac myocytes , 2009, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[16] J. Ohayon,et al. Theoretical analysis of the adaptive contractile behaviour of a single cardiomyocyte cultured on elastic substrates with varying stiffness. , 2008, Journal of theoretical biology.
[17] S Ponce Dawson,et al. Simplified model of cytosolic Ca2+ dynamics in the presence of one or several clusters of Ca2+ -release channels. , 2008, Physical review. E, Statistical, nonlinear, and soft matter physics.
[18] Topi Korhonen,et al. Excitation–Contraction Coupling of the Mouse Embryonic Cardiomyocyte , 2008, The Journal of general physiology.
[19] J. Rice,et al. Approximate model of cooperative activation and crossbridge cycling in cardiac muscle using ordinary differential equations. , 2008, Biophysical journal.
[20] F. Fenton,et al. Minimal model for human ventricular action potentials in tissue. , 2008, Journal of theoretical biology.
[21] Yutaka Kagaya,et al. Sarcomere mechanics in uniform and non-uniform cardiac muscle: a link between pump function and arrhythmias. , 2008, Progress in biophysics and molecular biology.
[22] Johan Hake,et al. Stochastic Binding of Ca2+ Ions in the Dyadic Cleft; Continuous versus Random Walk Description of Diffusion , 2008, Biophysical journal.
[23] B. Fleischmann,et al. Intracellular Ca2+ Oscillations, a Potential Pacemaking Mechanism in Early Embryonic Heart Cells , 2007, The Journal of general physiology.
[24] H. T. ter Keurs,et al. Calcium and arrhythmogenesis. , 2007, Physiological reviews.
[25] H. T. ter Keurs,et al. Role of Sarcomere Mechanics and Ca2+ Overload in Ca2+ Waves and Arrhythmias in Rat Cardiac Muscle , 2006, Annals of the New York Academy of Sciences.
[26] T. Mazel,et al. Reaction diffusion modeling of calcium dynamics with realistic ER geometry. , 2006, Biophysical journal.
[27] Alan Garny,et al. Effects of mechanosensitive ion channels on ventricular electrophysiology: experimental and theoretical models , 2006, Experimental physiology.
[28] H. T. ter Keurs,et al. Would modulation of intracellular Ca2+ be antiarrhythmic? , 2005, Pharmacology & therapeutics.
[29] Toshiaki Hisada,et al. Three-dimensional simulation of calcium waves and contraction in cardiomyocytes using the finite element method. , 2005, American journal of physiology. Cell physiology.
[30] Donald M Bers,et al. A mathematical treatment of integrated Ca dynamics within the ventricular myocyte. , 2004, Biophysical journal.
[31] Walter Herzog,et al. Dynamics of individual sarcomeres during and after stretch in activated single myofibrils , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[32] H. T. ter Keurs,et al. Nonuniform Ca2+ transients in arrhythmogenic Purkinje cells that survive in the infarcted canine heart. , 2003, Cardiovascular research.
[33] D. Bers. Cardiac excitation–contraction coupling , 2002, Nature.
[34] H. T. ter Keurs,et al. Stretch and quick release of rat cardiac trabeculae accelerates Ca2+ waves and triggered propagated contractions. , 2001, American journal of physiology. Heart and circulatory physiology.
[35] H. E. Keurs,et al. Ca2+ waves during triggered propagated contractions in intact trabeculae. Determinants of the velocity of propagation. , 1999, Circulation research.
[36] H. T. ter Keurs,et al. Damage-induced arrhythmias: reversal of excitation-contraction coupling. , 1998, Cardiovascular research.
[37] 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.
[38] F Sachs,et al. Stretch-induced voltage changes in the isolated beating heart: importance of the timing of stretch and implications for stretch-activated ion channels. , 1996, Cardiovascular research.
[39] W. Lederer,et al. The control of calcium release in heart muscle. , 1995, Science.
[40] W. Lederer,et al. Partial inhibition of Ca2+ current by methoxyverapamil (D600) reveals spatial nonuniformities in [Ca2+]i during excitation-contraction coupling in cardiac myocytes. , 1995, Circulation research.
[41] W. Lederer,et al. Spatial non-uniformities in [Ca2+]i during excitation-contraction coupling in cardiac myocytes. , 1994, Biophysical journal.
[42] T. Tameyasu,et al. Sarcomere dynamics in a spontaneous contraction wave and its effect on the following, electrically triggered twitch in rat myocyte. Comparison with the rested state twitch , 1994, The Journal of general physiology.
[43] E Niggli,et al. Microscopic spiral waves reveal positive feedback in subcellular calcium signaling. , 1993, Biophysical journal.
[44] W. Lederer,et al. Calcium sparks: elementary events underlying excitation-contraction coupling in heart muscle. , 1993, Science.
[45] A. Trafford,et al. Factors affecting the propagation of locally activated systolic Ca transients in rat ventricular myocytes , 1993, Pflügers Archiv.
[46] T Takishima,et al. Spatial features of calcium transients during early and delayed afterdepolarizations. , 1993, The American journal of physiology.
[47] H. T. ter Keurs,et al. Triggered propagated contractions in human atrial trabeculae. , 1992, Cardiovascular research.
[48] E. Lakatta. Functional implications of spontaneous sarcoplasmic reticulum Ca2+ release in the heart. , 1992, Cardiovascular research.
[49] D. Williams,et al. Spontaneous and propagated calcium release in isolated cardiac myocytes viewed by confocal microscopy. , 1992, The American journal of physiology.
[50] H. T. ter Keurs,et al. Role of the sarcolemma in triggered propagated contractions in rat cardiac trabeculae. , 1991, Circulation research.
[51] L. Blatter,et al. Ca2+-oscillations and Ca2+-waves in mammalian cardiac and vascular smooth muscle cells , 1991 .
[52] J. Mill,et al. Local activation of contraction in isolated rat ventricular myocytes. , 1990, The American journal of physiology.
[53] M. Daniels,et al. Spontaneous contractions in rat cardiac trabeculae. Trigger mechanism and propagation velocity , 1990, The Journal of general physiology.
[54] 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.
[55] K.,et al. A model of propagating calcium-induced calcium release mediated by calcium diffusion , 1989, The Journal of general physiology.
[56] E. Lakatta,et al. The interaction of electrically stimulated twitches and spontaneous contractile waves in single cardiac myocytes , 1986, The Journal of general physiology.
[57] E. Lakatta,et al. Single adult rabbit and rat cardiac myocytes retain the Ca2+- and species-dependent systolic and diastolic contractile properties of intact muscle , 1986, The Journal of general physiology.
[58] E. Lakatta,et al. Frequency, amplitude, and propagation velocity of spontaneous Ca++-dependent contractile waves in intact adult rat cardiac muscle and isolated myocytes. , 1985, Circulation research.
[59] E. Lakatta,et al. Frequency modulation and synchronization of spontaneous oscillations in cardiac cells. , 1985, The American journal of physiology.
[60] A. Noma,et al. Transient Depolarization and Spontaneous Voltage Fluctuations in Isolated Single Cells from Guinea Pig Ventricles: Calcium‐Mediated Membrane Potential Fluctuations , 1982, Circulation research.
[61] R. Tsien,et al. Fluctuations in membrane current driven by intracellular calcium in cardiac Purkinje fibers. , 1982, Biophysical journal.
[62] A. Fabiato,et al. CALCIUM‐INDUCED RELEASE OF CALCIUM FROM THE SARCOPLASMIC RETICULUM OF SKINNED CELLS FROM ADULT HUMAN, DOG, CAT, RABBIT, RAT, AND FROG HEARTS AND FROM FETAL AND NEW‐BORN RAT VENTRICLES * , 1978, Annals of the New York Academy of Sciences.
[63] T. Alexander Quinn,et al. The importance of non-uniformities in mechano-electric coupling for ventricular arrhythmias , 2013, Journal of Interventional Cardiac Electrophysiology.
[64] H. Keurs,et al. The interaction of Ca2+ with sarcomeric proteins: role in function and dysfunction of the heart , 2012 .
[65] Chamakuri Nagaiah,et al. Whole-cell simulations of hybrid stochastic and deterministic calcium dynamics in 3 D geometry , 2012 .
[66] Hendrick E D J ter Keurs,et al. The interaction of Ca2+ with sarcomeric proteins: role in function and dysfunction of the heart. , 2012, American journal of physiology. Heart and circulatory physiology.
[67] W. Lederer,et al. Calcium sparks. , 2008, Physiological reviews.
[68] Geneviève Dupont,et al. Calcium dynamics: spatio-temporal organization from the subcellular to the organ level. , 2007, International review of cytology.
[69] H. T. ter Keurs,et al. Arrhythmogenic Ca(2+) release from cardiac myofilaments. , 2006, Progress in biophysics and molecular biology.
[70] P. Hunter,et al. Stretch-induced changes in heart rate and rhythm: clinical observations, experiments and mathematical models. , 1999, Progress in biophysics and molecular biology.
[71] W. Lederer,et al. Calcium sparks and [Ca2+]i waves in cardiac myocytes. , 1996, The American journal of physiology.
[72] L. Blatter,et al. Ca(2+)-oscillations and Ca(2+)-waves in mammalian cardiac and vascular smooth muscle cells. , 1991, Cell calcium.