Literature DB >> 10827961

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

Z Qu1, J Kil, F Xie, A Garfinkel, J N Weiss.   

Abstract

Scroll wave (vortex) breakup is hypothesized to underlie ventricular fibrillation, the leading cause of sudden cardiac death. We simulated scroll wave behaviors in a three-dimensional cardiac tissue model, using phase I of the Luo-Rudy (LR1) action potential model. The effects of action potential duration (APD) restitution, tissue thickness, filament twist, and fiber rotation were studied. We found that APD restitution is the major determinant of scroll wave behavior and that instabilities arising from APD restitution are the main determinants of scroll wave breakup in this cardiac model. We did not see a "thickness-induced instability" in the LR1 model, but a minimum thickness is required for scroll breakup in the presence of fiber rotation. The major effect of fiber rotation is to maintain twist in a scroll wave, promoting filament bending and thus scroll breakup. In addition, fiber rotation induces curvature in the scroll wave, which weakens conduction and further facilitates wave break.

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Year:  2000        PMID: 10827961      PMCID: PMC1300866          DOI: 10.1016/S0006-3495(00)76821-4

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  40 in total

1.  Curvature effects on activation speed and repolarization in an ionic model of cardiac myocytes.

Authors:  P Comtois; A Vinet
Journal:  Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics       Date:  1999-10

2.  Electrical alternans and spiral wave breakup in cardiac tissue.

Authors:  Alain Karma
Journal:  Chaos       Date:  1994-09       Impact factor: 3.642

3.  Cardiac electrical restitution properties and stability of reentrant spiral waves: a simulation study.

Authors:  Z Qu; J N Weiss; A Garfinkel
Journal:  Am J Physiol       Date:  1999-01

4.  Mechanism of ventricular vulnerability to single premature stimuli in open-chest dogs.

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Journal:  Circ Res       Date:  1988-06       Impact factor: 17.367

Review 5.  Electrophysiological mechanisms of ventricular arrhythmias resulting from myocardial ischemia and infarction.

Authors:  M J Janse; A L Wit
Journal:  Physiol Rev       Date:  1989-10       Impact factor: 37.312

6.  Intracellular Ca(2+) dynamics and the stability of ventricular tachycardia.

Authors:  E Chudin; J Goldhaber; A Garfinkel; J Weiss; B Kogan
Journal:  Biophys J       Date:  1999-12       Impact factor: 4.033

7.  Computer simulations of three-dimensional propagation in ventricular myocardium. Effects of intramural fiber rotation and inhomogeneous conductivity on epicardial activation.

Authors:  A E Pollard; M J Burgess; K W Spitzer
Journal:  Circ Res       Date:  1993-04       Impact factor: 17.367

Review 8.  Spirals, chaos, and new mechanisms of wave propagation.

Authors:  P S Chen; A Garfinkel; J N Weiss; H S Karagueuzian
Journal:  Pacing Clin Electrophysiol       Date:  1997-02       Impact factor: 1.976

9.  Quasiperiodicity and chaos in cardiac fibrillation.

Authors:  A Garfinkel; P S Chen; D O Walter; H S Karagueuzian; B Kogan; S J Evans; M Karpoukhin; C Hwang; T Uchida; M Gotoh; O Nwasokwa; P Sager; J N Weiss
Journal:  J Clin Invest       Date:  1997-01-15       Impact factor: 14.808

10.  High-current stimuli to the spared epicardium of a large infarct induce ventricular tachycardia.

Authors:  K M Kavanagh; J S Kabas; D L Rollins; S B Melnick; W M Smith; R E Ideker
Journal:  Circulation       Date:  1992-02       Impact factor: 29.690

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  32 in total

1.  Critical mass hypothesis revisited: role of dynamical wave stability in spontaneous termination of cardiac fibrillation.

Authors:  Zhilin Qu
Journal:  Am J Physiol Heart Circ Physiol       Date:  2005-08-19       Impact factor: 4.733

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

Authors:  Zhilin Qu; Alan Garfinkel; James N Weiss
Journal:  Biophys J       Date:  2006-05-05       Impact factor: 4.033

3.  Nonlinear-dynamical arrhythmia control in humans.

Authors:  D J Christini; K M Stein; S M Markowitz; S Mittal; D J Slotwiner; M A Scheiner; S Iwai; B B Lerman
Journal:  Proc Natl Acad Sci U S A       Date:  2001-04-24       Impact factor: 11.205

Review 4.  Influence of anisotropic conduction properties in the propagation of the cardiac action potential.

Authors:  Miguel Valderrábano
Journal:  Prog Biophys Mol Biol       Date:  2007-03-24       Impact factor: 3.667

5.  Mechanisms of transition from normal to reentrant electrical activity in a model of rabbit atrial tissue: interaction of tissue heterogeneity and anisotropy.

Authors:  Oleg V Aslanidi; Mark R Boyett; Halina Dobrzynski; Jue Li; Henggui Zhang
Journal:  Biophys J       Date:  2009-02       Impact factor: 4.033

6.  Attraction and repulsion of spiral waves by inhomogeneity of conduction anisotropy--a model of spiral wave interaction with electrical remodeling of heart tissue.

Authors:  Pawel Kuklik; Prashanthan Sanders; Lukasz Szumowski; Jan J Żebrowski
Journal:  J Biol Phys       Date:  2012-10-07       Impact factor: 1.365

7.  Nonlinear and Stochastic Dynamics in the Heart.

Authors:  Zhilin Qu; Gang Hu; Alan Garfinkel; James N Weiss
Journal:  Phys Rep       Date:  2014-10-10       Impact factor: 25.600

8.  Simulation study on compressive laminar optical tomography for cardiac action potential propagation.

Authors:  Takumi Harada; Naoki Tomii; Shota Manago; Etsuko Kobayashi; Ichiro Sakuma
Journal:  Biomed Opt Express       Date:  2017-03-24       Impact factor: 3.732

9.  Bifurcation theory and cardiac arrhythmias.

Authors:  Hrayr S Karagueuzian; Hayk Stepanyan; William J Mandel
Journal:  Am J Cardiovasc Dis       Date:  2013-02-17

Review 10.  Ventricular fibrillation and defibrillation.

Authors:  P Jones; N Lodé
Journal:  Arch Dis Child       Date:  2007-10       Impact factor: 3.791

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