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Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation

The mechanisms underlying atrial fibrillation (AF), the most common sustained cardiac rhythm disturbance, remain elusive. Atrial fibrosis plays an important role in the development of AF and rotor dynamics. Both electrical wavelength (WL) and the degree of atrial fibrosis change as AF progresses. Ho...

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Autores principales: Saha, Mirabeau, Roney, Caroline H., Bayer, Jason D., Meo, Marianna, Cochet, Hubert, Dubois, Remi, Vigmond, Edward J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6139329/
https://www.ncbi.nlm.nih.gov/pubmed/30246796
http://dx.doi.org/10.3389/fphys.2018.01207
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author Saha, Mirabeau
Roney, Caroline H.
Bayer, Jason D.
Meo, Marianna
Cochet, Hubert
Dubois, Remi
Vigmond, Edward J.
author_facet Saha, Mirabeau
Roney, Caroline H.
Bayer, Jason D.
Meo, Marianna
Cochet, Hubert
Dubois, Remi
Vigmond, Edward J.
author_sort Saha, Mirabeau
collection PubMed
description The mechanisms underlying atrial fibrillation (AF), the most common sustained cardiac rhythm disturbance, remain elusive. Atrial fibrosis plays an important role in the development of AF and rotor dynamics. Both electrical wavelength (WL) and the degree of atrial fibrosis change as AF progresses. However, their combined effect on rotor core location remains unknown. The aim of this study was to analyze the effects of WL change on rotor core location in both fibrotic and non-fibrotic atria. Three patient specific fibrosis distributions (total fibrosis content: 16.6, 22.8, and 19.2%) obtained from clinical imaging data of persistent AF patients were incorporated in a bilayer atrial computational model. Fibrotic effects were modeled as myocyte-fibroblast coupling + conductivity remodeling; structural remodeling; ionic current changes + conductivity remodeling; and combinations of these methods. To change WL, action potential duration (APD) was varied from 120 to 240ms, representing the range of clinically observed AF cycle length, by modifying the inward rectifier potassium current (I(K1)) conductance between 80 and 140% of the original value. Phase singularities (PSs) were computed to identify rotor core locations. Our results show that I(K1) conductance variation resulted in a decrease of APD and WL across the atria. For large WL in the absence of fibrosis, PSs anchored to regions with high APD gradient at the center of the left atrium (LA) anterior wall and near the junctions of the inferior pulmonary veins (PVs) with the LA. Decreasing the WL induced more PSs, whose distribution became less clustered. With fibrosis, PS locations depended on the fibrosis distribution and the fibrosis implementation method. The proportion of PSs in fibrotic areas and along the borders varied with both WL and fibrosis modeling method: for patient one, this was 4.2–14.9% as I(K1) varied for the structural remodeling representation, but 12.3–88.4% using the combination of structural remodeling with myocyte-fibroblast coupling. The degree and distribution of fibrosis and the choice of implementation technique had a larger effect on PS locations than the WL variation. Thus, distinguishing the fibrotic mechanisms present in a patient is important for interpreting clinical fibrosis maps to create personalized models.
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spelling pubmed-61393292018-09-24 Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation Saha, Mirabeau Roney, Caroline H. Bayer, Jason D. Meo, Marianna Cochet, Hubert Dubois, Remi Vigmond, Edward J. Front Physiol Physiology The mechanisms underlying atrial fibrillation (AF), the most common sustained cardiac rhythm disturbance, remain elusive. Atrial fibrosis plays an important role in the development of AF and rotor dynamics. Both electrical wavelength (WL) and the degree of atrial fibrosis change as AF progresses. However, their combined effect on rotor core location remains unknown. The aim of this study was to analyze the effects of WL change on rotor core location in both fibrotic and non-fibrotic atria. Three patient specific fibrosis distributions (total fibrosis content: 16.6, 22.8, and 19.2%) obtained from clinical imaging data of persistent AF patients were incorporated in a bilayer atrial computational model. Fibrotic effects were modeled as myocyte-fibroblast coupling + conductivity remodeling; structural remodeling; ionic current changes + conductivity remodeling; and combinations of these methods. To change WL, action potential duration (APD) was varied from 120 to 240ms, representing the range of clinically observed AF cycle length, by modifying the inward rectifier potassium current (I(K1)) conductance between 80 and 140% of the original value. Phase singularities (PSs) were computed to identify rotor core locations. Our results show that I(K1) conductance variation resulted in a decrease of APD and WL across the atria. For large WL in the absence of fibrosis, PSs anchored to regions with high APD gradient at the center of the left atrium (LA) anterior wall and near the junctions of the inferior pulmonary veins (PVs) with the LA. Decreasing the WL induced more PSs, whose distribution became less clustered. With fibrosis, PS locations depended on the fibrosis distribution and the fibrosis implementation method. The proportion of PSs in fibrotic areas and along the borders varied with both WL and fibrosis modeling method: for patient one, this was 4.2–14.9% as I(K1) varied for the structural remodeling representation, but 12.3–88.4% using the combination of structural remodeling with myocyte-fibroblast coupling. The degree and distribution of fibrosis and the choice of implementation technique had a larger effect on PS locations than the WL variation. Thus, distinguishing the fibrotic mechanisms present in a patient is important for interpreting clinical fibrosis maps to create personalized models. Frontiers Media S.A. 2018-09-10 /pmc/articles/PMC6139329/ /pubmed/30246796 http://dx.doi.org/10.3389/fphys.2018.01207 Text en Copyright © 2018 Saha, Roney, Bayer, Meo, Cochet, Dubois and Vigmond. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Saha, Mirabeau
Roney, Caroline H.
Bayer, Jason D.
Meo, Marianna
Cochet, Hubert
Dubois, Remi
Vigmond, Edward J.
Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title_full Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title_fullStr Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title_full_unstemmed Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title_short Wavelength and Fibrosis Affect Phase Singularity Locations During Atrial Fibrillation
title_sort wavelength and fibrosis affect phase singularity locations during atrial fibrillation
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6139329/
https://www.ncbi.nlm.nih.gov/pubmed/30246796
http://dx.doi.org/10.3389/fphys.2018.01207
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