New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.

Spiral wave initiation in the heart muscle is a mechanism for the onset of dangerous cardiac arrhythmias. A standard protocol for spiral wave initiation is the application of a stimulus in the refractory tail of a propagating excitation wave, a region that we call the "classical vulnerable zone...

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Main Authors: Louis D Weise, Alexander V Panfilov
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3215707?pdf=render
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author Louis D Weise
Alexander V Panfilov
author_facet Louis D Weise
Alexander V Panfilov
author_sort Louis D Weise
collection DOAJ
description Spiral wave initiation in the heart muscle is a mechanism for the onset of dangerous cardiac arrhythmias. A standard protocol for spiral wave initiation is the application of a stimulus in the refractory tail of a propagating excitation wave, a region that we call the "classical vulnerable zone." Previous studies of vulnerability to spiral wave initiation did not take the influence of deformation into account, which has been shown to have a substantial effect on the excitation process of cardiomyocytes via the mechano-electrical feedback phenomenon. In this work we study the effect of deformation on the vulnerability of excitable media in a discrete reaction-diffusion-mechanics (dRDM) model. The dRDM model combines FitzHugh-Nagumo type equations for cardiac excitation with a discrete mechanical description of a finite-elastic isotropic material (Seth material) to model cardiac excitation-contraction coupling and stretch activated depolarizing current. We show that deformation alters the "classical," and forms a new vulnerable zone at longer coupling intervals. This mechanically caused vulnerable zone results in a new mechanism of spiral wave initiation, where unidirectional conduction block and rotation directions of the consequently initiated spiral waves are opposite compared to the mechanism of spiral wave initiation due to the "classical vulnerable zone." We show that this new mechanism of spiral wave initiation can naturally occur in situations that involve wave fronts with curvature, and discuss its relation to supernormal excitability of cardiac tissue. The concept of mechanically induced vulnerability may lead to a better understanding about the onset of dangerous heart arrhythmias via mechano-electrical feedback.
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spelling doaj.art-036c51666b1244139fc4b824752509872022-12-21T18:55:43ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-01611e2726410.1371/journal.pone.0027264New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.Louis D WeiseAlexander V PanfilovSpiral wave initiation in the heart muscle is a mechanism for the onset of dangerous cardiac arrhythmias. A standard protocol for spiral wave initiation is the application of a stimulus in the refractory tail of a propagating excitation wave, a region that we call the "classical vulnerable zone." Previous studies of vulnerability to spiral wave initiation did not take the influence of deformation into account, which has been shown to have a substantial effect on the excitation process of cardiomyocytes via the mechano-electrical feedback phenomenon. In this work we study the effect of deformation on the vulnerability of excitable media in a discrete reaction-diffusion-mechanics (dRDM) model. The dRDM model combines FitzHugh-Nagumo type equations for cardiac excitation with a discrete mechanical description of a finite-elastic isotropic material (Seth material) to model cardiac excitation-contraction coupling and stretch activated depolarizing current. We show that deformation alters the "classical," and forms a new vulnerable zone at longer coupling intervals. This mechanically caused vulnerable zone results in a new mechanism of spiral wave initiation, where unidirectional conduction block and rotation directions of the consequently initiated spiral waves are opposite compared to the mechanism of spiral wave initiation due to the "classical vulnerable zone." We show that this new mechanism of spiral wave initiation can naturally occur in situations that involve wave fronts with curvature, and discuss its relation to supernormal excitability of cardiac tissue. The concept of mechanically induced vulnerability may lead to a better understanding about the onset of dangerous heart arrhythmias via mechano-electrical feedback.http://europepmc.org/articles/PMC3215707?pdf=render
spellingShingle Louis D Weise
Alexander V Panfilov
New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
PLoS ONE
title New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
title_full New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
title_fullStr New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
title_full_unstemmed New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
title_short New mechanism of spiral wave initiation in a reaction-diffusion-mechanics system.
title_sort new mechanism of spiral wave initiation in a reaction diffusion mechanics system
url http://europepmc.org/articles/PMC3215707?pdf=render
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