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PMID: 18374394 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

The role of mechanoelectric feedback in vulnerability to electric shock.

Progress in biophysics and molecular biology ·Vol. 97 ·No. 2-3 ·2008-00-00 ·Pages 461-78

Li W, Gurev V, McCulloch AD, Trayanova NA

Abstract

Experimental and clinical studies have shown that ventricular dilatation is associated with increased arrhythmogenesis and elevated defibrillation threshold; however, the underlying mechanisms remain poorly understood. The goal of the present study was to test the hypothesis that (1) stretch-activated channel (SAC) recruitment and (2) geometrical deformations in organ shape and fiber architecture lead to increased arrhythmogenesis by electric shocks following acute ventricular dilatation. To elucidate the contribution of these two factors, the study employed, for the first time, a combined electro-mechanical simulation approach. Acute dilatation was simulated in a model of rabbit ventricular mechanics by raising the LV end-diastolic pressure from 0.6 (control) to 4.2 kPa (dilated). The output of the mechanics model was used in the electrophysiological model. Vulnerability to shocks was examined in the control, the dilated ventricles, and in the dilated ventricles that also incorporated currents through SAC as a function of local strain, by constructing vulnerability grids. Results showed that dilatation-induced deformation alone decreased upper limit of vulnerability (ULV) slightly and did not result in increased vulnerability. With SAC recruitment in the dilated ventricles, the number of shock-induced arrhythmia episodes increased by 37% (from 41 to 56) and the lower limit of vulnerability (LLV) decreased from 9 to 7 V/cm, while ULV did not change. The heterogeneous activation of SAC caused by the heterogeneous fiber strain in the ventricular walls was the main reason for increased vulnerability to electric shocks since it caused dispersion of electrophysiological properties in the tissue, resulting in postshock unidirectional block and establishment of reentry.

MeSH Terms
Animals Cardiomyopathy, Dilated/physiopathology Electric Countershock/adverse effects Feedback Heart Conduction System/physiopathology Mechanotransduction, Cellular/physiology Models, Cardiovascular Potassium Channels/physiology Rabbits Ventricular Fibrillation/physiopathology Ventricular Function Ventricular Function, Left Ventricular Remodeling
Chemicals
Potassium Channels
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Li Weihui
Department of Pathology, Beth Israel Deaconess Medical Center and Harvard Medical School, Boston, USA.
Gurev Viatcheslav
McCulloch Andrew D
Trayanova Natalia A
References (73)
73 references, click to expand
  1. Cardiac vulnerability to electric shocks during phase 1A of acute global ischemia.
    Heart Rhythm. 2004 Dec;1(6):695-703 PMID: 15851241
  2. Virtual electrodes and deexcitation: new insights into fibrillation induction and defibrillation.
    J Cardiovasc Electrophysiol. 2000 Mar;11(3):339-53 PMID: 10749359
  3. Regional ventricular wall thickening reflects changes in cardiac fiber and sheet structure during contraction: quantification with diffusion tensor MRI.
    Am J Physiol Heart Circ Physiol. 2005 Nov;289(5):H1898-907 PMID: 16219812
  4. Upper limit of vulnerability in a defibrillation model of the rabbit ventricles.
    J Electrocardiol. 2003;36 Suppl:51-6 PMID: 14716592
  5. Intramural virtual electrodes in ventricular wall: effects on epicardial polarizations.
    Circulation. 2004 May 18;109(19):2349-56 PMID: 15117837
  6. Cardiac defibrillation and the role of mechanoelectric feedback in postshock arrhythmogenesis.
    Ann N Y Acad Sci. 2006 Oct;1080:320-33 PMID: 17132792
  7. Comparison of the defibrillation threshold and the upper limit of ventricular vulnerability.
    Circulation. 1986 May;73(5):1022-8 PMID: 3698224
  8. The role of cardiac tissue structure in defibrillation.
    Chaos. 1998 Mar;8(1):221-233 PMID: 12779723
  9. Direct activation and defibrillation of cardiac tissue.
    J Theor Biol. 1996 Feb 7;178(3):313-24 PMID: 8730350
  10. Gadolinium decreases stretch-induced vulnerability to atrial fibrillation.
    Circulation. 2000 May 9;101(18):2200-5 PMID: 10801762
  11. Action potential and contractility changes in [Na(+)](i) overloaded cardiac myocytes: a simulation study.
    Biophys J. 2000 May;78(5):2392-404 PMID: 10777735
  12. Mechanoelectric feedback in a model of the passively inflated left ventricle.
    Ann Biomed Eng. 2001 May;29(5):414-26 PMID: 11400722
  13. Effects of pacing rate and timing of defibrillation shock on the relation between the defibrillation threshold and the upper limit of vulnerability in open chest dogs.
    J Am Coll Cardiol. 1991 Nov 15;18(6):1555-63 PMID: 1939961
  14. Prediction of defibrillation outcome by epicardial activation patterns following shocks near the defibrillation threshold.
    J Cardiovasc Electrophysiol. 2000 Sep;11(9):1014-21 PMID: 11021472
  15. Patterns of and mechanisms for shock-induced polarization in the heart: a bidomain analysis.
    IEEE Trans Biomed Eng. 1999 Mar;46(3):260-70 PMID: 10097461
  16. Modification of ventricular fibrillation activation patterns induced by local stretching.
    J Cardiovasc Electrophysiol. 2005 Oct;16(10):1087-96 PMID: 16191119
  17. Virtual electrode-induced phase singularity: a basic mechanism of defibrillation failure.
    Circ Res. 1998 May 4;82(8):918-25 PMID: 9576111
  18. Asymmetry in membrane responses to electric shocks: insights from bidomain simulations.
    Biophys J. 2004 Oct;87(4):2271-82 PMID: 15454429
  19. Activation during ventricular defibrillation in open-chest dogs. Evidence of complete cessation and regeneration of ventricular fibrillation after unsuccessful shocks.
    J Clin Invest. 1986 Mar;77(3):810-23 PMID: 3949979
  20. Effects of active shortening on tension development of rabbit papillary muscle.
    Am J Physiol. 1980 Jan;238(1):H8-13 PMID: 7356035
  21. Virtual electrode effects in defibrillation.
    Prog Biophys Mol Biol. 1998;69(2-3):387-403 PMID: 9785947
  22. Potential distribution in three-dimensional periodic myocardium--Part I: Solution with two-scale asymptotic analysis.
    IEEE Trans Biomed Eng. 1990 Mar;37(3):252-66 PMID: 2329000
  23. Arrhythmogenesis in experimental models of heart failure: the role of increased load.
    Cardiovasc Res. 1996 Aug;32(2):248-57 PMID: 8796111
  24. Transmembrane voltage changes during unipolar stimulation of rabbit ventricle.
    Circ Res. 1995 Dec;77(6):1229-39 PMID: 7586236
  25. Determinants of successful nonthoracotomy cardioverter-defibrillator implantation: experience in 101 patients using two different lead systems.
    J Am Coll Cardiol. 1993 Dec;22(7):1835-42 PMID: 8245336
  26. Effect of rapid pacing and T-wave scanning on the relation between the defibrillation and upper-limit-of-vulnerability dose-response curves.
    Circulation. 1995 Sep 1;92(5):1291-9 PMID: 7648678
  27. Cytochalasin D as excitation-contraction uncoupler for optically mapping action potentials in wedges of ventricular myocardium.
    J Cardiovasc Electrophysiol. 1998 Dec;9(12):1336-47 PMID: 9869533
  28. Effect of acute ventricular dilatation on fibrillation thresholds in the isolated rabbit heart.
    Am J Physiol. 1992 Oct;263(4 Pt 2):H1306-10 PMID: 1415778
  29. The role of photon scattering in optical signal distortion during arrhythmia and defibrillation.
    Biophys J. 2007 Nov 15;93(10):3714-26 PMID: 17978166
  30. Success and failure of the defibrillation shock: insights from a simulation study.
    J Cardiovasc Electrophysiol. 2000 Jul;11(7):785-96 PMID: 10921796
  31. Stretch-activated whole cell currents in adult rat cardiac myocytes.
    Am J Physiol Heart Circ Physiol. 2000 Feb;278(2):H548-57 PMID: 10666087
  32. A generalized activating function for predicting virtual electrodes in cardiac tissue.
    Biophys J. 1997 Sep;73(3):1410-23 PMID: 9284308
  33. Clinical predictors of the defibrillation threshold with the unipolar implantable defibrillation system.
    J Am Coll Cardiol. 1995 Jun;25(7):1576-83 PMID: 7759708
  34. A mathematical model of make and break electrical stimulation of cardiac tissue by a unipolar anode or cathode.
    IEEE Trans Biomed Eng. 1995 Dec;42(12):1174-84 PMID: 8550059
  35. Effect of ventricular dilatation on defibrillation threshold in the isolated perfused rabbit heart.
    J Cardiovasc Electrophysiol. 1997 Sep;8(9):1013-9 PMID: 9300299
  36. Myocardial ischemia lowers precordial thump efficacy: an inquiry into mechanisms using three-dimensional simulations.
    Heart Rhythm. 2006 Feb;3(2):179-86 PMID: 16443533
  37. Upper limit of vulnerability is a good estimator of shock strength associated with 90% probability of successful defibrillation in humans with transvenous implantable cardioverter-defibrillators.
    J Am Coll Cardiol. 1996 Apr;27(5):1112-8 PMID: 8609329
  38. Three-dimensional analysis of regional cardiac function: a model of rabbit ventricular anatomy.
    Prog Biophys Mol Biol. 1998;69(2-3):157-83 PMID: 9785937
  39. Dose-dependent inhibition of stretch-induced arrhythmias by gadolinium in isolated canine ventricles. Evidence for a unique mode of antiarrhythmic action.
    Circ Res. 1991 Sep;69(3):820-31 PMID: 1873875
  40. Wall stress and patterns of hypertrophy in the human left ventricle.
    J Clin Invest. 1975 Jul;56(1):56-64 PMID: 124746
  41. Virtual electrode effects in myocardial fibers.
    Biophys J. 1994 Mar;66(3 Pt 1):719-28 PMID: 8011903
  42. Roles of electric field and fiber structure in cardiac electric stimulation.
    Biophys J. 1999 Sep;77(3):1404-17 PMID: 10465752
  43. Current injection into a two-dimensional anisotropic bidomain.
    Biophys J. 1989 May;55(5):987-99 PMID: 2720084
  44. Stretch-induced changes in heart rate and rhythm: clinical observations, experiments and mathematical models.
    Prog Biophys Mol Biol. 1999;71(1):91-138 PMID: 10070213
  45. Syncytial heterogeneity as a mechanism underlying cardiac far-field stimulation during defibrillation-level shocks.
    J Cardiovasc Electrophysiol. 1998 Apr;9(4):384-94 PMID: 9581954
  46. Effect of stretch-activated channels on defibrillation efficacy.
    Heart Rhythm. 2004 May;1(1):67-77 PMID: 15851121
  47. 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
  48. The effect of gap junctional distribution on defibrillation.
    Chaos. 1998 Mar;8(1):175-187 PMID: 12779720
  49. Virtual electrodes in cardiac tissue: a common mechanism for anodal and cathodal stimulation.
    Biophys J. 1995 Dec;69(6):2195-210 PMID: 8599628
  50. Electrophysiological effects of acute ventricular dilatation in the isolated rabbit heart.
    Circ Res. 1988 Mar;62(3):554-62 PMID: 3342478
  51. Modeling defibrillation: effects of fiber curvature.
    J Electrocardiol. 1998;31 Suppl:23-9 PMID: 9988001
  52. Comparison of upper limit of vulnerability and defibrillation probability of success curves using a nonthoracotomy lead system.
    Circulation. 1995 Feb 15;91(4):1247-52 PMID: 7850965
  53. Mechanistic inquiry into decrease in probability of defibrillation success with increase in complexity of preshock reentrant activity.
    Am J Physiol Heart Circ Physiol. 2004 Mar;286(3):H909-17 PMID: 14604852
  54. 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
  55. The response of a spherical heart to a uniform electric field: a bidomain analysis of cardiac stimulation.
    IEEE Trans Biomed Eng. 1993 Sep;40(9):899-908 PMID: 8288281
  56. The effect of cardiac compression on defibrillation efficacy and the upper limit of vulnerability.
    J Cardiovasc Electrophysiol. 1995 May;6(5):368-78 PMID: 7551306
  57. Relation between upper limit of vulnerability and defibrillation threshold in humans.
    Circulation. 1993 Jul;88(1):186-92 PMID: 8319332
  58. Effect of sustained stretch on dispersion of ventricular fibrillation intervals in normal rabbit hearts.
    Cardiovasc Res. 1998 Aug;39(2):351-9 PMID: 9798520
  59. Cardiac microstructure: implications for electrical propagation and defibrillation in the heart.
    Circ Res. 2002 Aug 23;91(4):331-8 PMID: 12193466
  60. Defibrillation efficacy with endocardial electrodes is influenced by reductions in cardiac preload.
    J Interv Card Electrophysiol. 1997 Sep;1(2):95-102 PMID: 9869957
  61. Transmembrane voltage changes produced by real and virtual electrodes during monophasic defibrillation shock delivered by an implantable electrode.
    J Cardiovasc Electrophysiol. 1997 Sep;8(9):1031-45 PMID: 9300301
  62. Modification of stretch-induced shortening of repolarization by streptomycin in the isolated rabbit heart.
    J Cardiovasc Pharmacol. 2000 Dec;36(6):711-21 PMID: 11117370
  63. Three-dimensional stress and strain in passive rabbit left ventricle: a model study.
    Ann Biomed Eng. 2000 Jul;28(7):781-92 PMID: 11016415
  64. Defibrillation of the heart: insights into mechanisms from modelling studies.
    Exp Physiol. 2006 Mar;91(2):323-37 PMID: 16469820
  65. Intramural virtual electrodes during defibrillation shocks in left ventricular wall assessed by optical mapping of membrane potential.
    Circulation. 2002 Aug 20;106(8):1007-14 PMID: 12186808
  66. Spatial distribution of cardiac transmembrane potentials around an extracellular electrode: dependence on fiber orientation.
    Biophys J. 1995 Jun;68(6):2310-22 PMID: 7647235
  67. Alterations in atrial electrophysiology and tissue structure in a canine model of chronic atrial dilatation due to mitral regurgitation.
    Circulation. 2003 May 27;107(20):2615-22 PMID: 12732604
  68. Electroporation and shock-induced transmembrane potential in a cardiac fiber during defibrillation strength shocks.
    Ann Biomed Eng. 1998 Jul-Aug;26(4):584-96 PMID: 9662151
  69. Periodic conductivity as a mechanism for cardiac stimulation and defibrillation.
    IEEE Trans Biomed Eng. 1987 Jul;34(7):555-60 PMID: 3610207
  70. Mechanoelectrical feedback: independent role of preload and contractility in modulation of canine ventricular excitability.
    J Clin Invest. 1985 Nov;76(5):1843-50 PMID: 4056056
  71. Optical mapping of transmural activation induced by electrical shocks in isolated left ventricular wall wedge preparations.
    J Cardiovasc Electrophysiol. 2003 Nov;14(11):1215-22 PMID: 14678138
  72. Reversal of repolarization gradient does not reverse the chirality of shock-induced reentry in the rabbit heart.
    J Cardiovasc Electrophysiol. 2000 Sep;11(9):998-1007 PMID: 11021470
  73. Ventricular filling slows epicardial conduction and increases action potential duration in an optical mapping study of the isolated rabbit heart.
    J Cardiovasc Electrophysiol. 2003 Jul;14(7):739-49 PMID: 12930255
Article Info
Journal
Progress in biophysics and molecular biology
Abbr.
Prog Biophys Mol Biol
ISSN
0079-6107
Published
2008-00-00
Epub
2008-00-16
Pages
461-78
Language
English
Region
England
NLM ID
0401233
PMCID
PMC2517254
Subset
IM
Grants
NHLBI NIH HHS · HL-082729 · United States
NCRR NIH HHS · P41 RR08605 · United States
NHLBI NIH HHS · R01 HL063195 · United States
NHLBI NIH HHS · HL-063195 · United States
NHLBI NIH HHS · R01 HL063195-08 · United States
NHLBI NIH HHS · R01 HL082729 · United States
NHLBI NIH HHS · HL-067322 · United States
NCRR NIH HHS · P41 RR008605 · United States
NHLBI NIH HHS · R01 HL082729-02 · United States
NHLBI NIH HHS · R01 HL067322 · United States
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