Cargando…

A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current

Atrial fibrillation (AF) is the most frequent form of arrhythmia occurring in the industrialized world. Because of its complex nature, each identified form of AF requires specialized treatment. Thus, an in-depth understanding of the bases of these arrhythmias is essential for therapeutic development...

Descripción completa

Detalles Bibliográficos
Autores principales: Majumder, Rupamanjari, Jangsangthong, Wanchana, Feola, Iolanda, Ypey, Dirk L., Pijnappels, Daniël A., Panfilov, Alexander V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4917258/
https://www.ncbi.nlm.nih.gov/pubmed/27332890
http://dx.doi.org/10.1371/journal.pcbi.1004946
_version_ 1782438925810270208
author Majumder, Rupamanjari
Jangsangthong, Wanchana
Feola, Iolanda
Ypey, Dirk L.
Pijnappels, Daniël A.
Panfilov, Alexander V.
author_facet Majumder, Rupamanjari
Jangsangthong, Wanchana
Feola, Iolanda
Ypey, Dirk L.
Pijnappels, Daniël A.
Panfilov, Alexander V.
author_sort Majumder, Rupamanjari
collection PubMed
description Atrial fibrillation (AF) is the most frequent form of arrhythmia occurring in the industrialized world. Because of its complex nature, each identified form of AF requires specialized treatment. Thus, an in-depth understanding of the bases of these arrhythmias is essential for therapeutic development. A variety of experimental studies aimed at understanding the mechanisms of AF are performed using primary cultures of neonatal rat atrial cardiomyocytes (NRAMs). Previously, we have shown that the distinct advantage of NRAM cultures is that they allow standardized, systematic, robust re-entry induction in the presence of a constitutively-active acetylcholine-mediated K(+) current (I(KACh-c)). Experimental studies dedicated to mechanistic explorations of AF, using these cultures, often use computer models for detailed electrophysiological investigations. However, currently, no mathematical model for NRAMs is available. Therefore, in the present study we propose the first model for the action potential (AP) of a NRAM with constitutively-active acetylcholine-mediated K(+) current (I(KACh-c)). The descriptions of the ionic currents were based on patch-clamp data obtained from neonatal rats. Our monolayer model closely mimics the action potential duration (APD) restitution and conduction velocity (CV) restitution curves presented in our previous in vitro studies. In addition, the model reproduces the experimentally observed dynamics of spiral wave rotation, in the absence and in the presence of drug interventions, and in the presence of localized myofibroblast heterogeneities.
format Online
Article
Text
id pubmed-4917258
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-49172582016-07-08 A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current Majumder, Rupamanjari Jangsangthong, Wanchana Feola, Iolanda Ypey, Dirk L. Pijnappels, Daniël A. Panfilov, Alexander V. PLoS Comput Biol Research Article Atrial fibrillation (AF) is the most frequent form of arrhythmia occurring in the industrialized world. Because of its complex nature, each identified form of AF requires specialized treatment. Thus, an in-depth understanding of the bases of these arrhythmias is essential for therapeutic development. A variety of experimental studies aimed at understanding the mechanisms of AF are performed using primary cultures of neonatal rat atrial cardiomyocytes (NRAMs). Previously, we have shown that the distinct advantage of NRAM cultures is that they allow standardized, systematic, robust re-entry induction in the presence of a constitutively-active acetylcholine-mediated K(+) current (I(KACh-c)). Experimental studies dedicated to mechanistic explorations of AF, using these cultures, often use computer models for detailed electrophysiological investigations. However, currently, no mathematical model for NRAMs is available. Therefore, in the present study we propose the first model for the action potential (AP) of a NRAM with constitutively-active acetylcholine-mediated K(+) current (I(KACh-c)). The descriptions of the ionic currents were based on patch-clamp data obtained from neonatal rats. Our monolayer model closely mimics the action potential duration (APD) restitution and conduction velocity (CV) restitution curves presented in our previous in vitro studies. In addition, the model reproduces the experimentally observed dynamics of spiral wave rotation, in the absence and in the presence of drug interventions, and in the presence of localized myofibroblast heterogeneities. Public Library of Science 2016-06-22 /pmc/articles/PMC4917258/ /pubmed/27332890 http://dx.doi.org/10.1371/journal.pcbi.1004946 Text en © 2016 Majumder 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Majumder, Rupamanjari
Jangsangthong, Wanchana
Feola, Iolanda
Ypey, Dirk L.
Pijnappels, Daniël A.
Panfilov, Alexander V.
A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title_full A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title_fullStr A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title_full_unstemmed A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title_short A Mathematical Model of Neonatal Rat Atrial Monolayers with Constitutively Active Acetylcholine-Mediated K(+) Current
title_sort mathematical model of neonatal rat atrial monolayers with constitutively active acetylcholine-mediated k(+) current
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4917258/
https://www.ncbi.nlm.nih.gov/pubmed/27332890
http://dx.doi.org/10.1371/journal.pcbi.1004946
work_keys_str_mv AT majumderrupamanjari amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT jangsangthongwanchana amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT feolaiolanda amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT ypeydirkl amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT pijnappelsdaniela amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT panfilovalexanderv amathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT majumderrupamanjari mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT jangsangthongwanchana mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT feolaiolanda mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT ypeydirkl mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT pijnappelsdaniela mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent
AT panfilovalexanderv mathematicalmodelofneonatalratatrialmonolayerswithconstitutivelyactiveacetylcholinemediatedkcurrent