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M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation

RATIONALE: A quantitative framework to summarize and explain the quasi-stationary population dynamics of unstable phase singularities (PS) and wavelets in human atrial fibrillation (AF) is at present lacking. Building on recent evidence showing that the formation and destruction of PS and wavelets i...

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Autores principales: Dharmaprani, Dhani, Jenkins, Evan, Aguilar, Martin, Quah, Jing X., Lahiri, Anandaroop, Tiver, Kathryn, Mitchell, Lewis, Kuklik, Pawel, Meyer, Christian, Willems, Stephan, Clayton, Richard, Nash, Martyn, Nattel, Stanley, McGavigan, Andrew D., Ganesan, Anand N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7841497/
https://www.ncbi.nlm.nih.gov/pubmed/33519522
http://dx.doi.org/10.3389/fphys.2020.616866
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author Dharmaprani, Dhani
Jenkins, Evan
Aguilar, Martin
Quah, Jing X.
Lahiri, Anandaroop
Tiver, Kathryn
Mitchell, Lewis
Kuklik, Pawel
Meyer, Christian
Willems, Stephan
Clayton, Richard
Nash, Martyn
Nattel, Stanley
McGavigan, Andrew D.
Ganesan, Anand N.
author_facet Dharmaprani, Dhani
Jenkins, Evan
Aguilar, Martin
Quah, Jing X.
Lahiri, Anandaroop
Tiver, Kathryn
Mitchell, Lewis
Kuklik, Pawel
Meyer, Christian
Willems, Stephan
Clayton, Richard
Nash, Martyn
Nattel, Stanley
McGavigan, Andrew D.
Ganesan, Anand N.
author_sort Dharmaprani, Dhani
collection PubMed
description RATIONALE: A quantitative framework to summarize and explain the quasi-stationary population dynamics of unstable phase singularities (PS) and wavelets in human atrial fibrillation (AF) is at present lacking. Building on recent evidence showing that the formation and destruction of PS and wavelets in AF can be represented as renewal processes, we sought to establish such a quantitative framework, which could also potentially provide insight into the mechanisms of spontaneous AF termination. OBJECTIVES: Here, we hypothesized that the observed number of PS or wavelets in AF could be governed by a common set of renewal rate constants λ(f) (for PS or wavelet formation) and λ(d) (PS or wavelet destruction), with steady-state population dynamics modeled as an M/M/∞ birth–death process. We further hypothesized that changes to the M/M/∞ birth–death matrix would explain spontaneous AF termination. METHODS AND RESULTS: AF was studied in in a multimodality, multispecies study in humans, animal experimental models (rats and sheep) and Ramirez-Nattel-Courtemanche model computer simulations. We demonstrated: (i) that λ(f) and λ(d) can be combined in a Markov M/M/∞ process to accurately model the observed average number and population distribution of PS and wavelets in all systems at different scales of mapping; and (ii) that slowing of the rate constants λ(f) and λ(d) is associated with slower mixing rates of the M/M/∞ birth–death matrix, providing an explanation for spontaneous AF termination. CONCLUSION: M/M/∞ birth–death processes provide an accurate quantitative representational architecture to characterize PS and wavelet population dynamics in AF, by providing governing equations to understand the regeneration of PS and wavelets during sustained AF, as well as providing insight into the mechanism of spontaneous AF termination.
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spelling pubmed-78414972021-01-29 M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation Dharmaprani, Dhani Jenkins, Evan Aguilar, Martin Quah, Jing X. Lahiri, Anandaroop Tiver, Kathryn Mitchell, Lewis Kuklik, Pawel Meyer, Christian Willems, Stephan Clayton, Richard Nash, Martyn Nattel, Stanley McGavigan, Andrew D. Ganesan, Anand N. Front Physiol Physiology RATIONALE: A quantitative framework to summarize and explain the quasi-stationary population dynamics of unstable phase singularities (PS) and wavelets in human atrial fibrillation (AF) is at present lacking. Building on recent evidence showing that the formation and destruction of PS and wavelets in AF can be represented as renewal processes, we sought to establish such a quantitative framework, which could also potentially provide insight into the mechanisms of spontaneous AF termination. OBJECTIVES: Here, we hypothesized that the observed number of PS or wavelets in AF could be governed by a common set of renewal rate constants λ(f) (for PS or wavelet formation) and λ(d) (PS or wavelet destruction), with steady-state population dynamics modeled as an M/M/∞ birth–death process. We further hypothesized that changes to the M/M/∞ birth–death matrix would explain spontaneous AF termination. METHODS AND RESULTS: AF was studied in in a multimodality, multispecies study in humans, animal experimental models (rats and sheep) and Ramirez-Nattel-Courtemanche model computer simulations. We demonstrated: (i) that λ(f) and λ(d) can be combined in a Markov M/M/∞ process to accurately model the observed average number and population distribution of PS and wavelets in all systems at different scales of mapping; and (ii) that slowing of the rate constants λ(f) and λ(d) is associated with slower mixing rates of the M/M/∞ birth–death matrix, providing an explanation for spontaneous AF termination. CONCLUSION: M/M/∞ birth–death processes provide an accurate quantitative representational architecture to characterize PS and wavelet population dynamics in AF, by providing governing equations to understand the regeneration of PS and wavelets during sustained AF, as well as providing insight into the mechanism of spontaneous AF termination. Frontiers Media S.A. 2021-01-14 /pmc/articles/PMC7841497/ /pubmed/33519522 http://dx.doi.org/10.3389/fphys.2020.616866 Text en Copyright © 2021 Dharmaprani, Jenkins, Aguilar, Quah, Lahiri, Tiver, Mitchell, Kuklik, Meyer, Willems, Clayton, Nash, Nattel, McGavigan and Ganesan. 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
Dharmaprani, Dhani
Jenkins, Evan
Aguilar, Martin
Quah, Jing X.
Lahiri, Anandaroop
Tiver, Kathryn
Mitchell, Lewis
Kuklik, Pawel
Meyer, Christian
Willems, Stephan
Clayton, Richard
Nash, Martyn
Nattel, Stanley
McGavigan, Andrew D.
Ganesan, Anand N.
M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title_full M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title_fullStr M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title_full_unstemmed M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title_short M/M/Infinity Birth-Death Processes – A Quantitative Representational Framework to Summarize and Explain Phase Singularity and Wavelet Dynamics in Atrial Fibrillation
title_sort m/m/infinity birth-death processes – a quantitative representational framework to summarize and explain phase singularity and wavelet dynamics in atrial fibrillation
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7841497/
https://www.ncbi.nlm.nih.gov/pubmed/33519522
http://dx.doi.org/10.3389/fphys.2020.616866
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