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Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model

There is evidence that rotors could be drivers that maintain atrial fibrillation. Complex fractionated atrial electrograms have been located in rotor tip areas. However, the concept of electrogram fractionation, defined using time intervals, is still controversial as a tool for locating target sites...

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Autores principales: Ugarte, Juan P., Orozco-Duque, Andrés, Tobón, Catalina, Kremen, Vaclav, Novak, Daniel, Saiz, Javier, Oesterlein, Tobias, Schmitt, Clauss, Luik, Armin, Bustamante, John
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4260907/
https://www.ncbi.nlm.nih.gov/pubmed/25489858
http://dx.doi.org/10.1371/journal.pone.0114577
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author Ugarte, Juan P.
Orozco-Duque, Andrés
Tobón, Catalina
Kremen, Vaclav
Novak, Daniel
Saiz, Javier
Oesterlein, Tobias
Schmitt, Clauss
Luik, Armin
Bustamante, John
author_facet Ugarte, Juan P.
Orozco-Duque, Andrés
Tobón, Catalina
Kremen, Vaclav
Novak, Daniel
Saiz, Javier
Oesterlein, Tobias
Schmitt, Clauss
Luik, Armin
Bustamante, John
author_sort Ugarte, Juan P.
collection PubMed
description There is evidence that rotors could be drivers that maintain atrial fibrillation. Complex fractionated atrial electrograms have been located in rotor tip areas. However, the concept of electrogram fractionation, defined using time intervals, is still controversial as a tool for locating target sites for ablation. We hypothesize that the fractionation phenomenon is better described using non-linear dynamic measures, such as approximate entropy, and that this tool could be used for locating the rotor tip. The aim of this work has been to determine the relationship between approximate entropy and fractionated electrograms, and to develop a new tool for rotor mapping based on fractionation levels. Two episodes of chronic atrial fibrillation were simulated in a 3D human atrial model, in which rotors were observed. Dynamic approximate entropy maps were calculated using unipolar electrogram signals generated over the whole surface of the 3D atrial model. In addition, we optimized the approximate entropy calculation using two real multi-center databases of fractionated electrogram signals, labeled in 4 levels of fractionation. We found that the values of approximate entropy and the levels of fractionation are positively correlated. This allows the dynamic approximate entropy maps to localize the tips from stable and meandering rotors. Furthermore, we assessed the optimized approximate entropy using bipolar electrograms generated over a vicinity enclosing a rotor, achieving rotor detection. Our results suggest that high approximate entropy values are able to detect a high level of fractionation and to locate rotor tips in simulated atrial fibrillation episodes. We suggest that dynamic approximate entropy maps could become a tool for atrial fibrillation rotor mapping.
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spelling pubmed-42609072014-12-15 Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model Ugarte, Juan P. Orozco-Duque, Andrés Tobón, Catalina Kremen, Vaclav Novak, Daniel Saiz, Javier Oesterlein, Tobias Schmitt, Clauss Luik, Armin Bustamante, John PLoS One Research Article There is evidence that rotors could be drivers that maintain atrial fibrillation. Complex fractionated atrial electrograms have been located in rotor tip areas. However, the concept of electrogram fractionation, defined using time intervals, is still controversial as a tool for locating target sites for ablation. We hypothesize that the fractionation phenomenon is better described using non-linear dynamic measures, such as approximate entropy, and that this tool could be used for locating the rotor tip. The aim of this work has been to determine the relationship between approximate entropy and fractionated electrograms, and to develop a new tool for rotor mapping based on fractionation levels. Two episodes of chronic atrial fibrillation were simulated in a 3D human atrial model, in which rotors were observed. Dynamic approximate entropy maps were calculated using unipolar electrogram signals generated over the whole surface of the 3D atrial model. In addition, we optimized the approximate entropy calculation using two real multi-center databases of fractionated electrogram signals, labeled in 4 levels of fractionation. We found that the values of approximate entropy and the levels of fractionation are positively correlated. This allows the dynamic approximate entropy maps to localize the tips from stable and meandering rotors. Furthermore, we assessed the optimized approximate entropy using bipolar electrograms generated over a vicinity enclosing a rotor, achieving rotor detection. Our results suggest that high approximate entropy values are able to detect a high level of fractionation and to locate rotor tips in simulated atrial fibrillation episodes. We suggest that dynamic approximate entropy maps could become a tool for atrial fibrillation rotor mapping. Public Library of Science 2014-12-09 /pmc/articles/PMC4260907/ /pubmed/25489858 http://dx.doi.org/10.1371/journal.pone.0114577 Text en © 2014 Ugarte 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
Ugarte, Juan P.
Orozco-Duque, Andrés
Tobón, Catalina
Kremen, Vaclav
Novak, Daniel
Saiz, Javier
Oesterlein, Tobias
Schmitt, Clauss
Luik, Armin
Bustamante, John
Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title_full Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title_fullStr Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title_full_unstemmed Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title_short Dynamic Approximate Entropy Electroanatomic Maps Detect Rotors in a Simulated Atrial Fibrillation Model
title_sort dynamic approximate entropy electroanatomic maps detect rotors in a simulated atrial fibrillation model
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4260907/
https://www.ncbi.nlm.nih.gov/pubmed/25489858
http://dx.doi.org/10.1371/journal.pone.0114577
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