Literature DB >> 19835882

A novel computational model of the human ventricular action potential and Ca transient.

Eleonora Grandi1, Francesco S Pasqualini, Donald M Bers.   

Abstract

We have developed a detailed mathematical model for Ca handling and ionic currents in the human ventricular myocyte. Our aims were to: (1) simulate basic excitation-contraction coupling phenomena; (2) use realistic repolarizing K current densities; (3) reach steady-state. The model relies on the framework of the rabbit myocyte model previously developed by our group, with subsarcolemmal and junctional compartments where ion channels sense higher [Ca] vs. bulk cytosol. Ion channels and transporters have been modeled on the basis of the most recent experimental data from human ventricular myocytes. Rapidly and slowly inactivating components of I(to) have been formulated to differentiate between endocardial and epicardial myocytes. Transmural gradients of Ca handling proteins and Na pump were also simulated. The model has been validated against a wide set of experimental data including action potential duration (APD) adaptation and restitution, frequency-dependent increase in Ca transient peak and [Na](i). Interestingly, Na accumulation at fast heart rate is a major determinant of APD shortening, via outward shifts in Na pump and Na-Ca exchange currents. We investigated the effects of blocking K currents on APD and repolarization reserve: I(Ks) block does not affect the former and slightly reduces the latter; I(K1) blockade modestly increases APD and more strongly reduces repolarization reserve; I(Kr) blockers significantly prolong APD, an effect exacerbated as pacing frequency is decreased, in good agreement with experimental results in human myocytes. We conclude that this model provides a useful framework to explore excitation-contraction coupling mechanisms and repolarization abnormalities at the single myocyte level. Copyright 2009 Elsevier Inc. All rights reserved.

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Year:  2009        PMID: 19835882      PMCID: PMC2813400          DOI: 10.1016/j.yjmcc.2009.09.019

Source DB:  PubMed          Journal:  J Mol Cell Cardiol        ISSN: 0022-2828            Impact factor:   5.000


  48 in total

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4.  A computationally efficient electrophysiological model of human ventricular cells.

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Review 5.  Control of the cardiac action potential: The role of repolarization dynamics.

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  192 in total

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Review 4.  Computational modeling of the human atrial anatomy and electrophysiology.

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7.  Computationally efficient model of myocardial electromechanics for multiscale simulations.

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9.  Slow Delayed Rectifier Current Protects Ventricular Myocytes From Arrhythmic Dynamics Across Multiple Species: A Computational Study.

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10.  Slow Calcium-Depolarization-Calcium waves may initiate fast local depolarization waves in ventricular tissue.

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