Literature DB >> 1709839

A model of the ventricular cardiac action potential. Depolarization, repolarization, and their interaction.

C H Luo1, Y Rudy.   

Abstract

A mathematical model of the membrane action potential of the mammalian ventricular cell is introduced. The model is based, whenever possible, on recent single-cell and single-channel data and incorporates the possibility of changing extracellular potassium concentration [K]o. The fast sodium current, INa, is characterized by fast upstroke velocity (Vmax = 400 V/sec) and slow recovery from inactivation. The time-independent potassium current, IK1, includes a negative-slope phase and displays significant crossover phenomenon as [K]o is varied. The time-dependent potassium current, IK, shows only a minimal degree of crossover. A novel potassium current that activates at plateau potentials is included in the model. The simulated action potential duplicates the experimentally observed effects of changes in [K]o on action potential duration and rest potential. Physiological simulations focus on the interaction between depolarization and repolarization (i.e., premature stimulation). Results demonstrate the importance of the slow recovery of INa in determining the response of the cell. Simulated responses to periodic stimulation include monotonic Wenckebach patterns and alternans at normal [K]o, whereas at low [K]o nonmonotonic Wenckebach periodicities, aperiodic patterns, and enhanced supernormal excitability that results in unstable responses ("chaotic activity") are observed. The results are consistent with recent experimental observations, and the model simulations relate these phenomena to the underlying ionic channel kinetics.

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Year:  1991        PMID: 1709839     DOI: 10.1161/01.res.68.6.1501

Source DB:  PubMed          Journal:  Circ Res        ISSN: 0009-7330            Impact factor:   17.367


  223 in total

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3.  Scroll wave dynamics in a three-dimensional cardiac tissue model: roles of restitution, thickness, and fiber rotation.

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4.  Cardiac sodium channel Markov model with temperature dependence and recovery from inactivation.

Authors:  L A Irvine; M S Jafri; R L Winslow
Journal:  Biophys J       Date:  1999-04       Impact factor: 4.033

5.  Two-dimensional Chebyshev pseudospectral modelling of cardiac propagation.

Authors:  Z Zhan; K T Ng
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Review 6.  Electrophysiological modeling of cardiac ventricular function: from cell to organ.

Authors:  R L Winslow; D F Scollan; A Holmes; C K Yung; J Zhang; M S Jafri
Journal:  Annu Rev Biomed Eng       Date:  2000       Impact factor: 9.590

7.  Ionic charge conservation and long-term steady state in the Luo-Rudy dynamic cell model.

Authors:  T J Hund; J P Kucera; N F Otani; Y Rudy
Journal:  Biophys J       Date:  2001-12       Impact factor: 4.033

8.  Modelling induction of a rotor in cardiac muscle by perpendicular electric shocks.

Authors:  K Skouibine; J Wall; W Krassowska; N Trayanova
Journal:  Med Biol Eng Comput       Date:  2002-01       Impact factor: 2.602

9.  Influence of dynamic gap junction resistance on impulse propagation in ventricular myocardium: a computer simulation study.

Authors:  A P Henriquez; R Vogel; B J Muller-Borer; C S Henriquez; R Weingart; W E Cascio
Journal:  Biophys J       Date:  2001-10       Impact factor: 4.033

10.  Role of the transient outward potassium current in the genesis of early afterdepolarizations in cardiac cells.

Authors:  Zhenghang Zhao; Yuanfang Xie; Hairuo Wen; Dandan Xiao; Charelle Allen; Nadezhda Fefelova; Wen Dun; Penelope A Boyden; Zhilin Qu; Lai-Hua Xie
Journal:  Cardiovasc Res       Date:  2012-06-01       Impact factor: 10.787

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