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Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture

We develop a numerical approach based on our recent analytical model of fiber structure in the left ventricle of the human heart. A special curvilinear coordinate system is proposed to analytically include realistic ventricular shape and myofiber directions. With this anatomical model, electrophysio...

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Autores principales: Pravdin, Sergey F., Dierckx, Hans, Katsnelson, Leonid B., Solovyova, Olga, Markhasin, Vladimir S., Panfilov, Alexander V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4015904/
https://www.ncbi.nlm.nih.gov/pubmed/24817308
http://dx.doi.org/10.1371/journal.pone.0093617
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author Pravdin, Sergey F.
Dierckx, Hans
Katsnelson, Leonid B.
Solovyova, Olga
Markhasin, Vladimir S.
Panfilov, Alexander V.
author_facet Pravdin, Sergey F.
Dierckx, Hans
Katsnelson, Leonid B.
Solovyova, Olga
Markhasin, Vladimir S.
Panfilov, Alexander V.
author_sort Pravdin, Sergey F.
collection PubMed
description We develop a numerical approach based on our recent analytical model of fiber structure in the left ventricle of the human heart. A special curvilinear coordinate system is proposed to analytically include realistic ventricular shape and myofiber directions. With this anatomical model, electrophysiological simulations can be performed on a rectangular coordinate grid. We apply our method to study the effect of fiber rotation and electrical anisotropy of cardiac tissue (i.e., the ratio of the conductivity coefficients along and across the myocardial fibers) on wave propagation using the ten Tusscher–Panfilov (2006) ionic model for human ventricular cells. We show that fiber rotation increases the speed of cardiac activation and attenuates the effects of anisotropy. Our results show that the fiber rotation in the heart is an important factor underlying cardiac excitation. We also study scroll wave dynamics in our model and show the drift of a scroll wave filament whose velocity depends non-monotonically on the fiber rotation angle; the period of scroll wave rotation decreases with an increase of the fiber rotation angle; an increase in anisotropy may cause the breakup of a scroll wave, similar to the mother rotor mechanism of ventricular fibrillation.
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spelling pubmed-40159042014-05-14 Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture Pravdin, Sergey F. Dierckx, Hans Katsnelson, Leonid B. Solovyova, Olga Markhasin, Vladimir S. Panfilov, Alexander V. PLoS One Research Article We develop a numerical approach based on our recent analytical model of fiber structure in the left ventricle of the human heart. A special curvilinear coordinate system is proposed to analytically include realistic ventricular shape and myofiber directions. With this anatomical model, electrophysiological simulations can be performed on a rectangular coordinate grid. We apply our method to study the effect of fiber rotation and electrical anisotropy of cardiac tissue (i.e., the ratio of the conductivity coefficients along and across the myocardial fibers) on wave propagation using the ten Tusscher–Panfilov (2006) ionic model for human ventricular cells. We show that fiber rotation increases the speed of cardiac activation and attenuates the effects of anisotropy. Our results show that the fiber rotation in the heart is an important factor underlying cardiac excitation. We also study scroll wave dynamics in our model and show the drift of a scroll wave filament whose velocity depends non-monotonically on the fiber rotation angle; the period of scroll wave rotation decreases with an increase of the fiber rotation angle; an increase in anisotropy may cause the breakup of a scroll wave, similar to the mother rotor mechanism of ventricular fibrillation. Public Library of Science 2014-05-09 /pmc/articles/PMC4015904/ /pubmed/24817308 http://dx.doi.org/10.1371/journal.pone.0093617 Text en © 2014 Pravdin et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Pravdin, Sergey F.
Dierckx, Hans
Katsnelson, Leonid B.
Solovyova, Olga
Markhasin, Vladimir S.
Panfilov, Alexander V.
Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title_full Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title_fullStr Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title_full_unstemmed Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title_short Electrical Wave Propagation in an Anisotropic Model of the Left Ventricle Based on Analytical Description of Cardiac Architecture
title_sort electrical wave propagation in an anisotropic model of the left ventricle based on analytical description of cardiac architecture
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4015904/
https://www.ncbi.nlm.nih.gov/pubmed/24817308
http://dx.doi.org/10.1371/journal.pone.0093617
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