Literature DB >> 1940663

An eikonal-curvature equation for action potential propagation in myocardium.

J P Keener1.   

Abstract

We derive an "eikonal-curvature" equation to describe the propagation of action potential wavefronts in myocardium. This equation is used to study the effects of fiber orientation on propagation in the myocardial wall. There are significant computational advantages to the use of an eikonal-curvature equation over a full ionic model of action potential spread. With this model, it is shown that the experimentally observed misalignment of spreading action potential "ellipses" from fiber orientation in level myocardial surfaces is adequately explained by the rotation of fiber orientation through the myocardial wall. Additionally, it is shown that apparently high propagation velocities on the epicardial and endocardial surfaces are the result of propagation into the midwall region and acceleration along midwall fibers before reemergence at an outer surface at a time preceding what could be accomplished with propagation along the surface alone.

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Year:  1991        PMID: 1940663     DOI: 10.1007/bf00163916

Source DB:  PubMed          Journal:  J Math Biol        ISSN: 0303-6812            Impact factor:   2.259


  23 in total

1.  Reconstruction of the electrical activity of cardiac Purkinje fibres.

Authors:  R E McAllister; D Noble; R W Tsien
Journal:  J Physiol       Date:  1975-09       Impact factor: 5.182

2.  Directional differences in excitability and margin of safety for propagation in sheep ventricular epicardial muscle.

Authors:  C Delgado; B Steinhaus; M Delmar; D R Chialvo; J Jalife
Journal:  Circ Res       Date:  1990-07       Impact factor: 17.367

3.  A model study of the effects of the discrete cellular structure on electrical propagation in cardiac tissue.

Authors:  Y Rudy; W L Quan
Journal:  Circ Res       Date:  1987-12       Impact factor: 17.367

4.  Reconstruction of propagated electrical activity with a two-dimensional model of anisotropic heart muscle.

Authors:  F A Roberge; A Vinet; B Victorri
Journal:  Circ Res       Date:  1986-04       Impact factor: 17.367

5.  Intercalated discs as a cause for discontinuous propagation in cardiac muscle: a theoretical simulation.

Authors:  P J Diaz; Y Rudy; R Plonsey
Journal:  Ann Biomed Eng       Date:  1983       Impact factor: 3.934

Review 6.  The nature of electrical propagation in cardiac muscle.

Authors:  M S Spach; J M Kootsey
Journal:  Am J Physiol       Date:  1983-01

7.  Propagation through electrically coupled cells. Effects of a resistive barrier.

Authors:  R W Joyner; R Veenstra; D Rawling; A Chorro
Journal:  Biophys J       Date:  1984-05       Impact factor: 4.033

8.  Fast sodium current in cardiac muscle. A quantitative description.

Authors:  L Ebihara; E A Johnson
Journal:  Biophys J       Date:  1980-11       Impact factor: 4.033

9.  Simulation analysis of excitation conduction in the heart: propagation of excitation in different tissues.

Authors:  M Kawato; A Yamanaka; S Urushibara; O Nagata; H Irisawa; R Suzuki
Journal:  J Theor Biol       Date:  1986-06-21       Impact factor: 2.691

10.  Gap junction uncoupling and discontinuous propagation in the heart. A comparison of experimental data with computer simulations.

Authors:  W C Cole; J B Picone; N Sperelakis
Journal:  Biophys J       Date:  1988-05       Impact factor: 4.033

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  22 in total

1.  Anisotropy of wave propagation in the heart can be modeled by a Riemannian electrophysiological metric.

Authors:  Robert J Young; Alexander V Panfilov
Journal:  Proc Natl Acad Sci U S A       Date:  2010-08-09       Impact factor: 11.205

2.  A FAST ITERATIVE METHOD FOR SOLVING THE EIKONAL EQUATION ON TRIANGULATED SURFACES.

Authors:  Zhisong Fu; Won-Ki Jeong; Yongsheng Pan; Robert M Kirby; Ross T Whitaker
Journal:  SIAM J Sci Comput       Date:  2011-10-06       Impact factor: 2.373

3.  Patient-specific generation of the Purkinje network driven by clinical measurements of a normal propagation.

Authors:  Christian Vergara; Simone Palamara; Domenico Catanzariti; Fabio Nobile; Elena Faggiano; Cesarino Pangrazzi; Maurizio Centonze; Massimiliano Maines; Alfio Quarteroni; Giuseppe Vergara
Journal:  Med Biol Eng Comput       Date:  2014-08-24       Impact factor: 2.602

4.  A convenient scheme for coupling a finite element curvilinear mesh to a finite element voxel mesh: application to the heart.

Authors:  Bruce Hopenfeld
Journal:  Biomed Eng Online       Date:  2006-11-17       Impact factor: 2.819

5.  The transfer functions of cardiac tissue during stochastic pacing.

Authors:  Enno de Lange; Jan P Kucera
Journal:  Biophys J       Date:  2009-01       Impact factor: 4.033

6.  Vortex shedding as a precursor of turbulent electrical activity in cardiac muscle.

Authors:  C Cabo; A M Pertsov; J M Davidenko; W T Baxter; R A Gray; J Jalife
Journal:  Biophys J       Date:  1996-03       Impact factor: 4.033

7.  A two layers monodomain model of cardiac electrophysiology of the atria.

Authors:  Yves Coudière; Jacques Henry; Simon Labarthe
Journal:  J Math Biol       Date:  2015-03-15       Impact factor: 2.259

8.  Towards an interactive electromechanical model of the heart.

Authors:  Hugo Talbot; Stéphanie Marchesseau; Christian Duriez; Maxime Sermesant; Stéphane Cotin; Hervé Delingette
Journal:  Interface Focus       Date:  2013-04-06       Impact factor: 3.906

9.  A mathematical model of the unidirectional block caused by the pulmonary veins for anatomically induced atrial reentry.

Authors:  Sehun Chun
Journal:  J Biol Phys       Date:  2014-05-02       Impact factor: 1.365

10.  A FAST ITERATIVE METHOD FOR SOLVING THE EIKONAL EQUATION ON TETRAHEDRAL DOMAINS.

Authors:  Zhisong Fu; Robert M Kirby; Ross T Whitaker
Journal:  SIAM J Sci Comput       Date:  2013       Impact factor: 2.373

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