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Circulation Research. 1994;74:1071-1096

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Circulation Research, Vol 74, 1071-1096, Copyright © 1994 by American Heart Association


ARTICLES

A dynamic model of the cardiac ventricular action potential. I. Simulations of ionic currents and concentration changes

CH Luo and Y Rudy
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH 44106-7207.

A mathematical model of the cardiac ventricular action potential is presented. In our previous work, the membrane Na+ current and K+ currents were formulated. The present article focuses on processes that regulate intracellular Ca2+ and depend on its concentration. The model presented here for the mammalian ventricular action potential is based mostly on the guinea pig ventricular cell. However, it provides the framework for modeling other types of ventricular cells with appropriate modifications made to account for species differences. The following processes are formulated: Ca2+ current through the L-type channel (ICa), the Na(+)-Ca2+ exchanger, Ca2+ release and uptake by the sarcoplasmic reticulum (SR), buffering of Ca2+ in the SR and in the myoplasm, a Ca2+ pump in the sarcolemma, the Na(+)-K+ pump, and a nonspecific Ca(2+)-activated membrane current. Activation of ICa is an order of magnitude faster than in previous models. Inactivation of ICa depends on both the membrane voltage and [Ca2+]i. SR is divided into two subcompartments, a network SR (NSR) and a junctional SR (JSR). Functionally, Ca2+ enters the NSR and translocates to the JSR following a monoexponential function. Release of Ca2+ occurs at JSR and can be triggered by two different mechanisms, Ca(2+)-induced Ca2+ release and spontaneous release. The model provides the basis for the study of arrhythmogenic activity of the single myocyte including afterdepolarizations and triggered activity. It can simulate cellular responses under different degrees of Ca2+ overload. Such simulations are presented in our accompanying article in this issue of Circulation Research.


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Comments on "A model for human ventricular tissue"
Am J Physiol Heart Circ Physiol, January 1, 2005; 288(1): H453 - H453.
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Circ. Res.Home page
R. L. Winslow and J. L. Greenstein
The Ongoing Journey to Understand Heart Function Through Integrative Modeling
Circ. Res., December 10, 2004; 95(12): 1135 - 1136.
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Am. J. Physiol. Heart Circ. Physiol.Home page
A. E. Pollard, W. M. Smith, and R. C. Barr
Feasibility of cardiac microimpedance measurement using multisite interstitial stimulation
Am J Physiol Heart Circ Physiol, December 1, 2004; 287(6): H2402 - H2411.
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Cardiovasc ResHome page
J. Magyar, C. E. Kiper, R. Dumaine, D. E. Burgess, T. Banyasz, and J. Satin
Divergent action potential morphologies reveal nonequilibrium properties of human cardiac Na channels
Cardiovasc Res, December 1, 2004; 64(3): 477 - 487.
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CirculationHome page
T. J. Hund and Y. Rudy
Rate Dependence and Regulation of Action Potential and Calcium Transient in a Canine Cardiac Ventricular Cell Model
Circulation, November 16, 2004; 110(20): 3168 - 3174.
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Proc. Natl. Acad. Sci. USAHome page
N. Bursac, F. Aguel, and L. Tung
Multiarm spirals in a two-dimensional cardiac substrate
PNAS, October 26, 2004; 101(43): 15530 - 15534.
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CirculationHome page
E. Wettwer, O. Hala, T. Christ, J. F. Heubach, D. Dobrev, M. Knaut, A. Varro, and U. Ravens
Role of IKur in Controlling Action Potential Shape and Contractility in the Human Atrium: Influence of Chronic Atrial Fibrillation
Circulation, October 19, 2004; 110(16): 2299 - 2306.
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Am. J. Physiol. Heart Circ. Physiol.Home page
V. E. Bondarenko, G. P. Szigeti, G. C. L. Bett, S.-J. Kim, and R. L. Rasmusson
Computer model of action potential of mouse ventricular myocytes
Am J Physiol Heart Circ Physiol, September 1, 2004; 287(3): H1378 - H1403.
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PhysiologyHome page
D. Noble
Modeling the Heart
Physiology, August 1, 2004; 19(4): 191 - 197.
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Am. J. Physiol. Heart Circ. Physiol.Home page
B. Rodriguez, B. M. Tice, J. C. Eason, F. Aguel, J. M. Ferrero Jr., and N. Trayanova
Effect of acute global ischemia on the upper limit of vulnerability: a simulation study
Am J Physiol Heart Circ Physiol, June 1, 2004; 286(6): H2078 - H2088.
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Am. J. Physiol. Heart Circ. Physiol.Home page
A. T. Sambelashvili, V. P. Nikolski, and I. R. Efimov
Virtual electrode theory explains pacing threshold increase caused by cardiac tissue damage
Am J Physiol Heart Circ Physiol, June 1, 2004; 286(6): H2183 - H2194.
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Am. J. Physiol. Heart Circ. Physiol.Home page
X. Lin and R. D. Veenstra
Action potential modulation of connexin40 gap junctional conductance
Am J Physiol Heart Circ Physiol, May 1, 2004; 286(5): H1726 - H1735.
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Cardiovasc ResHome page
C. E Conrath, R. Wilders, R. Coronel, J. M.T de Bakker, P. Taggart, J. R de Groot, and T. Opthof
Intercellular coupling through gap junctions masks M cells in the human heart
Cardiovasc Res, May 1, 2004; 62(2): 407 - 414.
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Physiol. Rev.Home page
A. G. KLEBER and Y. RUDY
Basic Mechanisms of Cardiac Impulse Propagation and Associated Arrhythmias
Physiol Rev, April 1, 2004; 84(2): 431 - 488.
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J. Physiol.Home page
K. Ishihara and T. Ehara
Two modes of polyamine block regulating the cardiac inward rectifier K+ current IK1 as revealed by a study of the Kir2.1 channel expressed in a human cell line
J. Physiol., April 1, 2004; 556(1): 61 - 78.
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Am. J. Physiol. Heart Circ. Physiol.Home page
K. H. W. J. ten Tusscher, D. Noble, P. J. Noble, and A. V. Panfilov
A model for human ventricular tissue
Am J Physiol Heart Circ Physiol, April 1, 2004; 286(4): H1573 - H1589.
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Am. J. Physiol. Heart Circ. Physiol.Home page
V. E. Bondarenko, G. C. L. Bett, and R. L. Rasmusson
A model of graded calcium release and L-type Ca2+ channel inactivation in cardiac muscle
Am J Physiol Heart Circ Physiol, March 1, 2004; 286(3): H1154 - H1169.
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Exp PhysiolHome page
E. J. Crampin, M. Halstead, P. Hunter, P. Nielsen, D. Noble, N. Smith, and M. Tawhai
Computational physiology and the physiome project
Exp Physiol, January 1, 2004; 89(1): 1 - 26.
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Am. J. Physiol. Heart Circ. Physiol.Home page
C. Bollensdorff, A. Knopp, C. Biskup, T. Zimmer, and K. Benndorf
Na+ current through KATP channels: consequences for Na+ and K+ fluxes during early myocardial ischemia
Am J Physiol Heart Circ Physiol, January 1, 2004; 286(1): H283 - H295.
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Am. J. Physiol. Heart Circ. Physiol.Home page
A. Arutunyan, A. Pumir, V. Krinsky, L. Swift, and N. Sarvazyan
Behavior of ectopic surface: effects of {beta}-adrenergic stimulation and uncoupling
Am J Physiol Heart Circ Physiol, December 1, 2003; 285(6): H2531 - H2542.
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J. Biol. Chem.Home page
J. J. Saucerman, L. L. Brunton, A. P. Michailova, and A. D. McCulloch
Modeling {beta}-Adrenergic Control of Cardiac Myocyte Contractility in Silico
J. Biol. Chem., November 28, 2003; 278(48): 47997 - 48003.
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Cardiovasc ResHome page
J. R. de Groot, T. Veenstra, A. O. Verkerk, R. Wilders, J. P.P. Smits, F. J.G. Wilms-Schopman, R. F. Wiegerinck, J. Bourier, C. N.W. Belterman, R. Coronel, et al.
Conduction slowing by the gap junctional uncoupler carbenoxolone
Cardiovasc Res, November 1, 2003; 60(2): 288 - 297.
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Circ. Res.Home page
X. Lin, M. Crye, and R. D. Veenstra
Regulation of Connexin43 Gap Junctional Conductance by Ventricular Action Potentials
Circ. Res., September 19, 2003; 93 (6): e63 - e73.
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