Unidirectional block in cardiac fibers: effects of discontinuities in coupling resistance and spatial changes in resting membrane potential in a computer simulation study
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N. Maglaveras | A. Sahakian | N. Maglaveras | G. Myers | A.V. Sahakian | G.A. Myers | Nicos Maglaveras | G. A. Myers
[1] J Jalife,et al. A biologic model of parasystole. , 1979, The American journal of cardiology.
[2] J. Weiss,et al. Glycolysis preferentially inhibits ATP-sensitive K+ channels in isolated guinea pig cardiac myocytes. , 1987, Science.
[3] R. W. Joyner,et al. Propagation through electrically coupled cells. Effects of a resistive barrier. , 1984, Biophysical journal.
[4] T. Colatsky,et al. Voltage clamp measurements of sodium channel properties in rabbit cardiac Purkinje fibres. , 1980, The Journal of physiology.
[5] A. Kleber,et al. The “Border Zone” in Myocardial Ischemia: An Electrophysiological, Metabolic, and Histochemical Correlation in the Pig Heart , 1979, Circulation research.
[6] G. Smith,et al. Numerical Solution of Partial Differential Equations: Finite Difference Methods , 1978 .
[7] M. Spach,et al. Relating Extracellular Potentials and Their Derivatives to Anisotropic Propagation at a Microscopic Level in Human Cardiac Muscle: Evidence for Electrical Uncoupling of Side‐to‐Side Fiber Connections with Increasing Age , 1986, Circulation research.
[8] J. Wojtczak. Contractures and Increase in Internal Longitudinal Resistance of Cow Ventricular Muscle Induced by Hypoxia , 1979, Circulation research.
[9] D. Geselowitz,et al. The Discontinuous Nature of Propagation in Normal Canine Cardiac Muscle: Evidence for Recurrent Discontinuities of Intracellular Resistance that Affect the Membrane Currents , 1981, Circulation research.
[10] A. Coulombe,et al. Simulation of potassium accumulation in clefts of Purkinje fibers: effect on membrane electrical activity. , 1983, Journal of theoretical biology.
[11] T K Borg,et al. The collagen matrix of the heart. , 1981, Federation proceedings.
[12] D. Noble,et al. The action of adrenaline on pace‐maker activity in cardiac Purkinje fibres. , 1978, The Journal of physiology.
[13] D. Noble,et al. Reconstruction of the electrical activity of cardiac Purkinje fibres. , 1975, The Journal of physiology.
[14] J W Moore,et al. A numerical method to model excitable cells. , 1978, Biophysical journal.
[15] A. Noma,et al. Properties of adenosine‐triphosphate‐regulated potassium channels in guinea‐pig ventricular cells. , 1985, The Journal of physiology.
[16] R. W. Joyner,et al. Propagation through Electrically Coupled Cells: Effects of Regional Changes in Membrane Properties , 1983, Circulation research.
[17] G. W. Beeler,et al. Reconstruction of the action potential of ventricular myocardial fibres , 1977, The Journal of physiology.
[18] G. Hedstrom,et al. Numerical Solution of Partial Differential Equations , 1966 .
[19] N. Maglaveras,et al. Boundary conditions in simulations of cardiac propagating action potentials , 1988, IEEE Transactions on Biomedical Engineering.
[20] D DiFrancesco,et al. A model of cardiac electrical activity incorporating ionic pumps and concentration changes. , 1985, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[21] A. Resmini. The conduction of the cardiac impulse : P. F. Cranefeld, Futura Publ. Co., Mount Kisko, N.Y. (1975), 404 pp., $ 27.50. , 1977 .
[22] R. W. Joyner,et al. Unidirectional block between Purkinje and ventricular layers of papillary muscles. , 1984, The American journal of physiology.
[23] M J Janse,et al. Potassium accumulation in the globally ischemic mammalian heart. A role for the ATP-sensitive potassium channel. , 1990, Circulation research.
[24] M. Morad,et al. Two types of calcium channels in guinea pig ventricular myocytes. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[25] M J Janse,et al. Electrophysiological changes and ventricular arrhythmias in the early phase of regional myocardial ischemia. , 1981, Circulation research.
[26] R. Tsien,et al. A novel type of cardiac calcium channel in ventricular cells , 1985, Nature.
[27] M S Spach,et al. The Functional Role of Structural Complexities in the Propagation of Depolarization in the Atrium of the Dog: Cardiac Conduction Disturbances Due to Discontinuities of Effective Axial Resistivity , 1982, Circulation research.
[28] W. J. Mueller,et al. Interaction of Transmembrane Potentials in Canine Purkinje Fibers and at Purkinje Fiber‐Muscle Junctions , 1969, Circulation research.
[29] F. O. Schmitt,et al. DIRECTIONAL DIFFERENCES IN THE CONDUCTION OF THE IMPULSE THROUGH HEART MUSCLE AND THEIR POSSIBLE RELATION TO EXTRASYSTOLIC AND FIBRILLARY CONTRACTIONS , 1928 .
[30] J Jalife,et al. Effect of Electrotonic Potentials on Pacemaker Activity of Canine Purkinje Fibers in Relation to Parasystole , 1976, Circulation research.
[31] J. Jack,et al. Electric current flow in excitable cells , 1975 .
[32] C. Méndez,et al. A Mechanism for Reentry in Canine Ventricular Tissue , 1971, Circulation research.
[33] C Antzelevitch,et al. Electrotonically Mediated Delayed Conduction and Reentry in Relation to “Slow Responses” in Mammalian Ventricular Conducting Tissue , 1981, Circulation research.
[34] R. W. Joyner,et al. Effects of the Discrete Pattern of Electrical Coupling on Propagation through an Electrical Syncytium , 1982, Circulation research.
[35] A. L. Wit,et al. Conduction of the Cardiac Impulse , 1972, The Journal of general physiology.
[36] W. J. Mueller,et al. Propagation of Impulses across the Purkinje Fiber‐Muscle Junctions in the Dog Heart , 1970, Circulation research.
[37] A. L. Wit,et al. Conduction of the Cardiac Impulse III. Characteristics of very slow conduction , 1972 .
[38] T K Borg,et al. Structural basis of ventricular stiffness. , 1981, Laboratory investigation; a journal of technical methods and pathology.
[39] M. Janse,et al. Influence of Geometry on the Shape of the Propagated Action Potential , 1978 .
[40] L. DeFelice,et al. Na channel kinetics during the spontaneous heart beat in embryonic chick ventricle cells. , 1987, Biophysical journal.
[41] A. Hodgkin,et al. A quantitative description of membrane current and its application to conduction and excitation in nerve , 1952, The Journal of physiology.
[42] Jean-Pierre Drouhard,et al. The Simulation of Repolarization Events of the Cardiac Purkinje Fiber Action Potential , 1982, IEEE Transactions on Biomedical Engineering.
[43] J M Kootsey,et al. Low conduction in cardiac muscle. Biophysical model. , 1973, Biophysical journal.
[44] G. Ferrier,et al. Automaticity and Entrance Block Induced by Focal Depolarization of Mammalian Ventricular Tissues , 1980, Circulation research.
[45] D. Noble. 6 – Sodium–Calcium Exchange and Its Role in Generating Electric Current , 1986 .
[46] A. Kleber,et al. Flow of “Injury” Current and Patterns of Excitation during Early Ventricular Arrhythmias in Acute Regional Myocardial Ischemia in Isolated Porcine and Canine Hearts: Evidence for Two Different Arrhythmogenic Mechanisms , 1980, Circulation research.
[47] S. Ramo,et al. Fields and Waves in Communication Electronics , 1966 .
[48] Michiel J. Janse,et al. Comparison of the Effect of the Regional Ischemia, Hypoxia, Hyperkalemia, and Acidosis on Intracellular and Extracellular Potentials and Metabolism in the Isolated Porcine Heart , 1980, Circulation research.
[49] R. W. Joyner. Mechanisms of unidirectional block in cardiac tissues. , 1981, Biophysical journal.
[50] E. Johnson,et al. Fast sodium current in cardiac muscle. A quantitative description. , 1980, Biophysical journal.