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PMID: 16679367 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Vulnerable window for conduction block in a one-dimensional cable of cardiac cells, 1: single extrasystoles.

Biophysical journal ·Vol. 91 ·No. 3 ·2006-08-01 ·Pages 793-804

Qu Z, Garfinkel A, Weiss JN

Abstract

Spatial dispersion of refractoriness, which is amplified by genetic diseases, drugs, and electrical and structural remodeling during heart disease, is recognized as a major factor increasing the risk of lethal arrhythmias and sudden cardiac death. Dispersion forms the substrate for unidirectional conduction block, which is required for the initiation of reentry by extrasystoles or rapid pacing. In this study, we examine theoretically and numerically how preexisting gradients in refractoriness control the vulnerable window for unidirectional conduction block by a single premature extrasystole. Using a kinematic model to represent wavefront-waveback interactions, we first analytically derived the relationship (under simplified conditions) between the vulnerable window and various electrophysiological parameters such as action potential duration gradients, refractoriness barriers, conduction velocity restitution, etc. We then compared these findings to numerical simulations using the kinematic model or the Luo-Rudy action potential model in a one-dimensional cable of cardiac cells. The results from all three methods agreed well. We show that a critical gradient in action potential duration for conduction block can be analytically derived, and once this critical gradient is exceeded, the vulnerable window increases proportionately with the refractory barrier and is modulated by conduction velocity restitution and gap junctional conductance. Moreover, the critical gradient for conduction block is higher for an extrasystole traveling in the opposite direction from the sinus beat than for one traveling in the same direction (e.g., an epicardial extrasystole versus an endocardial extrasystole).

MeSH Terms
Biomechanical Phenomena Biophysics/methods Diastole Electrophysiology Gap Junctions Heart Diseases/pathology Humans Kinetics Membrane Potentials Models, Statistical Models, Theoretical Myocytes, Cardiac/cytology Sodium/chemistry
Chemicals
Sodium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Qu Zhilin
Department of Medicine Cardiology, David Geffen School of Medicine, University of California, Los Angeles, 90095, USA. [email protected]
Garfinkel Alan
Weiss James N
References (54)
54 references, click to expand
  1. Regional differences in electrophysiological properties of epicardium, midmyocardium, and endocardium. In vitro and in vivo correlations.
    Circulation. 1996 Oct 15;94(8):1981-8 PMID: 8873677
  2. Action potential duration restitution and alternans in rabbit ventricular myocytes: the key role of intracellular calcium cycling.
    Circ Res. 2005 Mar 4;96(4):459-66 PMID: 15662034
  3. Effects of high frequency stimulation on cardiac tissue with an inexcitable obstacle.
    J Theor Biol. 1993 Aug 21;163(4):439-48 PMID: 8246510
  4. Vulnerability in an excitable medium: analytical and numerical studies of initiating unidirectional propagation.
    Biophys J. 1993 Nov;65(5):1775-87 PMID: 8298011
  5. Heterogeneity within the ventricular wall. Electrophysiology and pharmacology of epicardial, endocardial, and M cells.
    Circ Res. 1991 Dec;69(6):1427-49 PMID: 1659499
  6. Shock-induced arrhythmogenesis in the myocardium.
    Chaos. 2002 Sep;12(3):962-972 PMID: 12779620
  7. Instability and spatiotemporal dynamics of alternans in paced cardiac tissue.
    Phys Rev Lett. 2002 May 20;88(20):208101 PMID: 12005608
  8. Effects of Na(+) channel and cell coupling abnormalities on vulnerability to reentry: a simulation study.
    Am J Physiol Heart Circ Physiol. 2004 Apr;286(4):H1310-21 PMID: 14630634
  9. A computer model of normal conduction in the human atria.
    Circ Res. 2000 Sep 29;87(7):E25-36 PMID: 11009627
  10. Proarrhythmic response to sodium channel blockade. Theoretical model and numerical experiments.
    Circulation. 1991 Sep;84(3):1364-77 PMID: 1653123
  11. Electrical instability in cardiac muscle: phase singularities and rotors.
    J Theor Biol. 1989 Jun 8;138(3):353-405 PMID: 2593680
  12. Myocardial architecture and ventricular arrhythmogenesis.
    Circulation. 1998 May 5;97(17):1746-54 PMID: 9591770
  13. Modulation of ventricular repolarization by a premature stimulus. Role of epicardial dispersion of repolarization kinetics demonstrated by optical mapping of the intact guinea pig heart.
    Circ Res. 1996 Sep;79(3):493-503 PMID: 8781482
  14. The role of M cells and the long QT syndrome in cardiac arrhythmias: simulation studies of reentrant excitations using a detailed electrophysiological model.
    Chaos. 2004 Mar;14(1):172-82 PMID: 15003058
  15. Modulated dispersion explains changes in arrhythmia vulnerability during premature stimulation of the heart.
    Circulation. 1998 Dec 15;98(24):2774-80 PMID: 9851966
  16. Spatiotemporal heterogeneity in the induction of ventricular fibrillation by rapid pacing: importance of cardiac restitution properties.
    Circ Res. 1999 Jun 11;84(11):1318-31 PMID: 10364570
  17. A model of the ventricular cardiac action potential. Depolarization, repolarization, and their interaction.
    Circ Res. 1991 Jun;68(6):1501-26 PMID: 1709839
  18. Reentry in a morphologically realistic atrial model.
    J Cardiovasc Electrophysiol. 2001 Sep;12(9):1046-54 PMID: 11577703
  19. Simulation and prediction of functional block in the presence of structural and ionic heterogeneity.
    Am J Physiol Heart Circ Physiol. 2001 Dec;281(6):H2597-603 PMID: 11709428
  20. Transmural electrophysiological heterogeneities underlying arrhythmogenesis in heart failure.
    Circ Res. 2003 Oct 3;93(7):638-45 PMID: 12933704
  21. Dynamics of conduction blocks in a model of paced cardiac tissue.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2005 May;71(5 Pt 1):051911 PMID: 16089575
  22. Mechanisms underlying conduction slowing and arrhythmogenesis in nonischemic dilated cardiomyopathy.
    Circ Res. 2004 Oct 1;95(7):717-25 PMID: 15345654
  23. Characteristics and distribution of M cells in arterially perfused canine left ventricular wedge preparations.
    Circulation. 1998 Nov 3;98(18):1921-7 PMID: 9799214
  24. Spatial dispersion of repolarization is a key factor in the arrhythmogenicity of long QT syndrome.
    J Cardiovasc Electrophysiol. 2004 Mar;15(3):323-31 PMID: 15030424
  25. Termination of reentry in an inhomogeneous ring of model cardiac cells.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2002 Dec;66(6 Pt 1):061903 PMID: 12513314
  26. Wavelet formation in excitable cardiac tissue: the role of wavefront-obstacle interactions in initiating high-frequency fibrillatory-like arrhythmias.
    Biophys J. 1996 Feb;70(2):581-94 PMID: 8789078
  27. Unidirectional block and reentry of cardiac excitation: a model study.
    Circ Res. 1990 Feb;66(2):367-82 PMID: 2297808
  28. A simulation study of the effects of cardiac anatomy in ventricular fibrillation.
    J Clin Invest. 2004 Mar;113(5):686-93 PMID: 14991066
  29. Spatiotemporal transition to conduction block in canine ventricle.
    Circ Res. 2002 Feb 22;90(3):289-96 PMID: 11861417
  30. Reentrant ventricular arrhythmias in the late myocardial infarction period in the dog. 13. Correlation of activation and refractory maps.
    Circ Res. 1985 Sep;57(3):432-42 PMID: 4028346
  31. The distribution of refractory periods influences the dynamics of ventricular fibrillation.
    Circ Res. 2001 Mar 16;88(5):E49-58 PMID: 11249880
  32. Reentrant ventricular arrhythmias in the late myocardial infarction period: mechanism by which a short-long-short cardiac sequence facilitates the induction of reentry.
    Circulation. 1991 Jan;83(1):268-78 PMID: 1984885
  33. The pinwheel experiment revisited.
    J Theor Biol. 1998 Feb 21;190(4):389-93 PMID: 9533873
  34. Mechanisms for discordant alternans.
    J Cardiovasc Electrophysiol. 2001 Feb;12(2):196-206 PMID: 11232619
  35. Interdependence of modulated dispersion and tissue structure in the mechanism of unidirectional block.
    Circ Res. 2000 Nov 10;87(10):922-8 PMID: 11073889
  36. Unique topographical distribution of M cells underlies reentrant mechanism of torsade de pointes in the long-QT syndrome.
    Circulation. 2002 Mar 12;105(10):1247-53 PMID: 11889021
  37. Scroll wave dynamics in a three-dimensional cardiac tissue model: roles of restitution, thickness, and fiber rotation.
    Biophys J. 2000 Jun;78(6):2761-75 PMID: 10827961
  38. Conduction block in one-dimensional heart fibers.
    Phys Rev Lett. 2002 Nov 4;89(19):198101 PMID: 12443153
  39. NONUNIFORM RECOVERY OF EXCITABILITY IN VENTRICULAR MUSCLE.
    Circ Res. 1964 Jan;14:44-60 PMID: 14104163
  40. Influence of shock strength and timing on induction of ventricular arrhythmias in dogs.
    Am J Physiol. 1988 Oct;255(4 Pt 2):H891-901 PMID: 3177678
  41. Ventricular arrhythmias in the subacute myocardial infarction period. High-resolution activation and refractory patterns of reentrant rhythms.
    Circ Res. 1990 May;66(5):1310-27 PMID: 2335029
  42. Mechanism linking T-wave alternans to the genesis of cardiac fibrillation.
    Circulation. 1999 Mar 16;99(10):1385-94 PMID: 10077525
  43. Vulnerable window for conduction block in a one-dimensional cable of cardiac cells, 2: multiple extrasystoles.
    Biophys J. 2006 Aug 1;91(3):805-15 PMID: 16679366
  44. Interplay of ionic and structural heterogeneity on functional action potential duration gradients: Implications for arrhythmogenesis.
    Chaos. 2002 Sep;12(3):819-828 PMID: 12779610
  45. Mechanisms of discordant alternans and induction of reentry in simulated cardiac tissue.
    Circulation. 2000 Oct 3;102(14):1664-70 PMID: 11015345
  46. Differences between left and right ventricular chamber geometry affect cardiac vulnerability to electric shocks.
    Circ Res. 2005 Jul 22;97(2):168-75 PMID: 15976315
  47. Complex spiral wave dynamics in a spatially distributed ionic model of cardiac electrical activity.
    Chaos. 1996 Dec;6(4):579-600 PMID: 12780289
  48. Effects of IKr and IKs heterogeneity on action potential duration and its rate dependence: a simulation study.
    Circulation. 1999 May 11;99(18):2466-74 PMID: 10318671
  49. Mechanism of ventricular vulnerability to single premature stimuli in open-chest dogs.
    Circ Res. 1988 Jun;62(6):1191-209 PMID: 2454762
  50. Enhanced dispersion of repolarization and refractoriness in transgenic mouse hearts promotes reentrant ventricular tachycardia.
    Circ Res. 2000 Mar 3;86(4):396-407 PMID: 10700444
  51. Stimulus-induced critical point. Mechanism for electrical initiation of reentry in normal canine myocardium.
    J Clin Invest. 1989 Mar;83(3):1039-52 PMID: 2921316
  52. Rotating spiral waves created by geometry.
    Science. 1994 Jun 17;264(5166):1746-8 PMID: 17839908
  53. Dispersion of cardiac action potential duration and the initiation of re-entry: a computational study.
    Biomed Eng Online. 2005 Feb 18;4:11 PMID: 15720712
  54. Wave block formation in homogeneous excitable media following premature excitations: dependence on restitution relations.
    Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Sep;72(3 Pt 1):031919 PMID: 16241494
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
2006-08-01
Epub
2006-00-05
Pages
793-804
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1563756
Subset
IM
Grants
NHLBI NIH HHS · P01 HL078931 · United States
NHLBI NIH HHS · P50 HL53219 · United States
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