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PMID: 16214852 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Mechanisms of excitation-contraction coupling in an integrative model of the cardiac ventricular myocyte.

Biophysical journal ·Vol. 90 ·No. 1 ·2006-01-01 ·Pages 77-91

Greenstein JL, Hinch R, Winslow RL

Abstract

It is now well established that characteristic properties of excitation-contraction (EC) coupling in cardiac myocytes, such as high gain and graded Ca(2+) release, arise from the interactions that occur between L-type Ca(2+) channels (LCCs) and nearby ryanodine-sensitive Ca(2+) release channels (RyRs) in localized microdomains. Descriptions of Ca(2+)-induced Ca(2+) release (CICR) that account for these local mechanisms are lacking from many previous models of the cardiac action potential, and those that do include local control of CICR are able to reconstruct properties of EC coupling, but require computationally demanding stochastic simulations of approximately 10(5) individual ion channels. In this study, we generalize a recently developed analytical approach for deriving simplified mechanistic models of CICR to formulate an integrative model of the canine cardiac myocyte which is computationally efficient. The resulting model faithfully reproduces experimentally measured properties of EC coupling and whole cell phenomena. The model is used to study the role of local redundancy in L-type Ca(2+) channel gating and the role of dyad configuration on EC coupling. Simulations suggest that the characteristic steep rise in EC coupling gain observed at hyperpolarized potentials is a result of increased functional coupling between LCCs and RyRs. We also demonstrate mechanisms by which alterations in the early repolarization phase of the action potential, resulting from reduction of the transient outward potassium current, alters properties of EC coupling.

MeSH Terms
Action Potentials Animals Biophysics/methods Calcium/metabolism Calcium Channels/chemistry Calcium Channels, L-Type/chemistry Calcium Signaling Cell Membrane/metabolism Computer Simulation Dogs Heart Ventricles/metabolism Ion Channel Gating Markov Chains Membrane Potentials Models, Biological Models, Cardiovascular Muscle Cells/metabolism Myocytes, Cardiac/metabolism Protein Structure, Tertiary Ryanodine/metabolism Ryanodine Receptor Calcium Release Channel/chemistry Sarcoplasmic Reticulum/metabolism Time Factors
Chemicals
Calcium Channels Calcium Channels, L-Type Ryanodine Receptor Calcium Release Channel Ryanodine Calcium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Greenstein Joseph L
The Center for Cardiovascular Bioinformatics and Modeling and The Whitaker Biomedical Engineering Institute, The Johns Hopkins University Whiting School of Engineering and School of Medicine, Baltimore, Maryland, USA. [email protected]
Hinch Robert
Winslow Raimond L
References (72)
72 references, click to expand
  1. A mathematical model of action potential heterogeneity in adult rat left ventricular myocytes.
    Biophys J. 2001 Dec;81(6):3029-51 PMID: 11720973
  2. Ionic mechanism of electrical alternans.
    Am J Physiol Heart Circ Physiol. 2002 Feb;282(2):H516-30 PMID: 11788399
  3. Modulation of Ca(2+) release in cardiac myocytes by changes in repolarization rate: role of phase-1 action potential repolarization in excitation-contraction coupling.
    Circ Res. 2002 Feb 8;90(2):165-73 PMID: 11834709
  4. Na(+)-Ca(2+) exchange current and submembrane [Ca(2+)] during the cardiac action potential.
    Circ Res. 2002 Feb 8;90(2):182-9 PMID: 11834711
  5. Termination of cardiac Ca(2+) sparks: an investigative mathematical model of calcium-induced calcium release.
    Biophys J. 2002 Jul;83(1):59-78 PMID: 12080100
  6. Excitation-contraction coupling in rat ventricular myocytes after formamide-induced detubulation.
    Am J Physiol. 1999 Aug;277(2 Pt 2):H603-9 PMID: 10444485
  7. Shape, size, and distribution of Ca(2+) release units and couplons in skeletal and cardiac muscles.
    Biophys J. 1999 Sep;77(3):1528-39 PMID: 10465763
  8. Modeling gain and gradedness of Ca2+ release in the functional unit of the cardiac diadic space.
    Biophys J. 1999 Oct;77(4):1871-84 PMID: 10512809
  9. Rate dependence and regulation of action potential and calcium transient in a canine cardiac ventricular cell model.
    Circulation. 2004 Nov 16;110(20):3168-74 PMID: 15505083
  10. A simplified local control model of calcium-induced calcium release in cardiac ventricular myocytes.
    Biophys J. 2004 Dec;87(6):3723-36 PMID: 15465866
  11. The role of stochastic and modal gating of cardiac L-type Ca2+ channels on early after-depolarizations.
    Biophys J. 2005 Jan;88(1):85-95 PMID: 15501946
  12. A dynamic model of the cardiac ventricular action potential. I. Simulations of ionic currents and concentration changes.
    Circ Res. 1994 Jun;74(6):1071-96 PMID: 7514509
  13. Ca(2+) release mechanisms, Ca(2+) sparks, and local control of excitation-contraction coupling in normal heart muscle.
    Circ Res. 1999 Oct 29;85(9):770-6 PMID: 10532944
  14. L-type Ca2+ channel density and regulation are altered in failing human ventricular myocytes and recover after support with mechanical assist devices.
    Circ Res. 2002 Sep 20;91(6):517-24 PMID: 12242270
  15. An integrative model of the cardiac ventricular myocyte incorporating local control of Ca2+ release.
    Biophys J. 2002 Dec;83(6):2918-45 PMID: 12496068
  16. Engineered calmodulins reveal the unexpected eminence of Ca2+ channel inactivation in controlling heart excitation.
    Proc Natl Acad Sci U S A. 2002 Dec 24;99(26):17185-90 PMID: 12486220
  17. Regulation of cardiac excitation-contraction coupling by action potential repolarization: role of the transient outward potassium current (I(to)).
    J Physiol. 2003 Jan 1;546(Pt 1):5-18 PMID: 12509475
  18. Ca2+ scraps: local depletions of free [Ca2+] in cardiac sarcoplasmic reticulum during contractions leave substantial Ca2+ reserve.
    Circ Res. 2003 Jul 11;93(1):40-5 PMID: 12791706
  19. Role of sodium-calcium exchanger in modulating the action potential of ventricular myocytes from normal and failing hearts.
    Circ Res. 2003 Jul 11;93(1):46-53 PMID: 12805237
  20. Regulation of dynamic behavior of cardiac ryanodine receptor by Mg2+ under simulated physiological conditions.
    Am J Physiol Cell Physiol. 2003 Nov;285(5):C1059-70 PMID: 12839831
  21. Na/Ca exchange and Na/K-ATPase function are equally concentrated in transverse tubules of rat ventricular myocytes.
    Biophys J. 2003 Nov;85(5):3388-96 PMID: 14581240
  22. A model of graded calcium release and L-type Ca2+ channel inactivation in cardiac muscle.
    Am J Physiol Heart Circ Physiol. 2004 Mar;286(3):H1154-69 PMID: 14630639
  23. A mathematical analysis of the generation and termination of calcium sparks.
    Biophys J. 2004 Mar;86(3):1293-307 PMID: 14990462
  24. A computational model of the human left-ventricular epicardial myocyte.
    Biophys J. 2004 Sep;87(3):1507-25 PMID: 15345532
  25. A mathematical treatment of integrated Ca dynamics within the ventricular myocyte.
    Biophys J. 2004 Nov;87(5):3351-71 PMID: 15347581
  26. Voltage-dependent properties of macroscopic and elementary calcium channel currents in guinea pig ventricular myocytes.
    Pflugers Arch. 1986 May;406(5):437-48 PMID: 2423956
  27. An intrinsic potential-dependent inactivation mechanism associated with calcium channels in guinea-pig myocytes.
    J Physiol. 1987 Aug;389:205-22 PMID: 2445973
  28. Effect of membrane potential changes on the calcium transient in single rat cardiac muscle cells.
    Science. 1987 Dec 4;238(4832):1419-23 PMID: 2446391
  29. Regulation of calcium release is gated by calcium current, not gating charge, in cardiac myocytes.
    Science. 1989 May 19;244(4906):800-3 PMID: 2543067
  30. Beta-adrenergic stimulation of calcium channels occurs by potentiation of high-activity gating modes.
    Proc Natl Acad Sci U S A. 1990 Jan;87(2):753-7 PMID: 1689051
  31. Permeation in the dihydropyridine-sensitive calcium channel. Multi-ion occupancy but no anomalous mole-fraction effect between Ba2+ and Ca2+.
    J Gen Physiol. 1990 May;95(5):911-39 PMID: 2163433
  32. Theory of excitation-contraction coupling in cardiac muscle.
    Biophys J. 1992 Aug;63(2):497-517 PMID: 1330031
  33. Ionic bases for electrophysiological distinctions among epicardial, midmyocardial, and endocardial myocytes from the free wall of the canine left ventricle.
    Circ Res. 1993 Mar;72(3):671-87 PMID: 8431990
  34. Local calcium transients triggered by single L-type calcium channel currents in cardiac cells.
    Science. 1995 May 19;268(5213):1042-5 PMID: 7754383
  35. The control of calcium release in heart muscle.
    Science. 1995 May 19;268(5213):1045-9 PMID: 7754384
  36. Relation between the sarcolemmal Ca2+ current and Ca2+ sparks and local control theories for cardiac excitation-contraction coupling.
    Circ Res. 1996 Jan;78(1):166-71 PMID: 8603501
  37. Ionic mechanism of action potential prolongation in ventricular myocytes from dogs with pacing-induced heart failure.
    Circ Res. 1996 Feb;78(2):262-73 PMID: 8575070
  38. Ca2+ release-induced inactivation of Ca2+ current in rat ventricular myocytes: evidence for local Ca2+ signalling.
    J Physiol. 1997 Apr 15;500 ( Pt 2):285-95 PMID: 9147317
  39. Improved guinea-pig ventricular cell model incorporating a diadic space, IKr and IKs, and length- and tension-dependent processes.
    Can J Cardiol. 1998 Jan;14(1):123-34 PMID: 9487284
  40. Cardiac Ca2+ dynamics: the roles of ryanodine receptor adaptation and sarcoplasmic reticulum load.
    Biophys J. 1998 Mar;74(3):1149-68 PMID: 9512016
  41. Single-channel properties of L-type calcium channels from failing human ventricle.
    Cardiovasc Res. 1998 Feb;37(2):445-55 PMID: 9614499
  42. Simulation study of cellular electric properties in heart failure.
    Circ Res. 1998 Jun 15;82(11):1206-23 PMID: 9633920
  43. Spark-to-wave transition: saltatory transmission of calcium waves in cardiac myocytes.
    Biophys Chem. 1998 May 5;72(1-2):87-100 PMID: 9652087
  44. Increased availability and open probability of single L-type calcium channels from failing compared with nonfailing human ventricle.
    Circulation. 1998 Sep 8;98(10):969-76 PMID: 9737516
  45. Control of L-type calcium current during the action potential of guinea-pig ventricular myocytes.
    J Physiol. 1998 Dec 1;513 ( Pt 2):425-42 PMID: 9806993
  46. Regulation of the cardiac ryanodine receptor channel by luminal Ca2+ involves luminal Ca2+ sensing sites.
    Biophys J. 1998 Dec;75(6):2801-10 PMID: 9826602
  47. Termination of Ca2+ release by a local inactivation of ryanodine receptors in cardiac myocytes.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):15096-101 PMID: 9844021
  48. Local control models of cardiac excitation-contraction coupling. A possible role for allosteric interactions between ryanodine receptors.
    J Gen Physiol. 1999 Mar;113(3):469-89 PMID: 10051521
  49. Mechanisms of altered excitation-contraction coupling in canine tachycardia-induced heart failure, I: experimental studies.
    Circ Res. 1999 Mar 19;84(5):562-70 PMID: 10082478
  50. Mechanisms of altered excitation-contraction coupling in canine tachycardia-induced heart failure, II: model studies.
    Circ Res. 1999 Mar 19;84(5):571-86 PMID: 10082479
  51. Calmodulin is the Ca2+ sensor for Ca2+ -dependent inactivation of L-type calcium channels.
    Neuron. 1999 Mar;22(3):549-58 PMID: 10197534
  52. Macroscopic and unitary properties of physiological ion flux through L-type Ca2+ channels in guinea-pig heart cells.
    J Physiol. 1992 Oct;456:267-84 PMID: 1338098
  53. Calcium sparks: elementary events underlying excitation-contraction coupling in heart muscle.
    Science. 1993 Oct 29;262(5134):740-4 PMID: 8235594
  54. Mechanisms of beta-adrenergic stimulation of cardiac Ca2+ channels revealed by discrete-time Markov analysis of slow gating.
    Biophys J. 1993 Oct;65(4):1599-612 PMID: 7506067
  55. Local control of excitation-contraction coupling in rat heart cells.
    J Physiol. 1994 Feb 1;474(3):463-71 PMID: 8014907
  56. Inhibition and rapid recovery of Ca2+ current during Ca2+ release from sarcoplasmic reticulum in guinea pig ventricular myocytes.
    Circ Res. 1995 Jan;76(1):102-9 PMID: 8001267
  57. Local, stochastic release of Ca2+ in voltage-clamped rat heart cells: visualization with confocal microscopy.
    J Physiol. 1994 Oct 1;480 ( Pt 1):21-9 PMID: 7853223
  58. Characteristics of the delayed rectifier current (IKr and IKs) in canine ventricular epicardial, midmyocardial, and endocardial myocytes. A weaker IKs contributes to the longer action potential of the M cell.
    Circ Res. 1995 Mar;76(3):351-65 PMID: 7859382
  59. Effects of sarcoplasmic reticulum Ca2+ load on the gain function of Ca2+ release by Ca2+ current in cardiac cells.
    Am J Physiol. 1995 Feb;268(2 Pt 2):H916-20 PMID: 7864219
  60. Rapid activation of the cardiac ryanodine receptor by submillisecond calcium stimuli.
    J Gen Physiol. 1999 Dec;114(6):787-98 PMID: 10578015
  61. Critical determinants of Ca(2+)-dependent inactivation within an EF-hand motif of L-type Ca(2+) channels.
    Biophys J. 2000 Apr;78(4):1906-20 PMID: 10733970
  62. Action potential and contractility changes in [Na(+)](i) overloaded cardiac myocytes: a simulation study.
    Biophys J. 2000 May;78(5):2392-404 PMID: 10777735
  63. PKA phosphorylation dissociates FKBP12.6 from the calcium release channel (ryanodine receptor): defective regulation in failing hearts.
    Cell. 2000 May 12;101(4):365-76 PMID: 10830164
  64. Enhanced Ca(2+) release and Na/Ca exchange activity in hypertrophied canine ventricular myocytes: potential link between contractile adaptation and arrhythmogenesis.
    Circulation. 2000 Oct 24;102(17):2137-44 PMID: 11044433
  65. Distribution of proteins implicated in excitation-contraction coupling in rat ventricular myocytes.
    Biophys J. 2000 Nov;79(5):2682-91 PMID: 11053140
  66. Role of the calcium-independent transient outward current I(to1) in shaping action potential morphology and duration.
    Circ Res. 2000 Nov 24;87(11):1026-33 PMID: 11090548
  67. Reduction in density of transverse tubules and L-type Ca(2+) channels in canine tachycardia-induced heart failure.
    Cardiovasc Res. 2001 Feb 1;49(2):298-307 PMID: 11164840
  68. Decreased sarcoplasmic reticulum calcium content is responsible for defective excitation-contraction coupling in canine heart failure.
    Circulation. 2001 Mar 20;103(11):1577-84 PMID: 11257088
  69. Ca2+ signalling between single L-type Ca2+ channels and ryanodine receptors in heart cells.
    Nature. 2001 Mar 29;410(6828):592-6 PMID: 11279498
  70. Markovian models of low and high activity levels of cardiac ryanodine receptors.
    Biophys J. 2001 Jun;80(6):2727-41 PMID: 11371448
  71. Coupled gating between cardiac calcium release channels (ryanodine receptors).
    Circ Res. 2001 Jun 8;88(11):1151-8 PMID: 11397781
  72. beta-Adrenergic stimulation synchronizes intracellular Ca(2+) release during excitation-contraction coupling in cardiac myocytes.
    Circ Res. 2001 Apr 27;88(8):794-801 PMID: 11325871
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
2006-01-01
Epub
2005-00-07
Pages
77-91
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1367039
Subset
IM
Grants
NHLBI NIH HHS · R01 HL061711 · United States
NHLBI NIH HHS · R01 HL105239 · United States
NHLBI NIH HHS · R01 HL-60133 · United States
NHLBI NIH HHS · R01 HL072488 · United States
NHLBI NIH HHS · R01 HL-61711 · United States
NHLBI NIH HHS · R01 HL-72488 · United States
NHLBI NIH HHS · R01 HL060133 · United States
NHLBI NIH HHS · P50 HL-52307 · United States
NHLBI NIH HHS · N01 HV028180 · United States
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