CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study

Exposure to air pollutants like carbon monoxide (CO), lead (Pb++) and sulfur dioxide (SO2) promotes the occurrence of cardiovascular diseases. Experimental studies have shown that CO, Pb++ and SO2 block L-type calcium channels, reducing the calcium current (ICaL) and the action potential duration (A...

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Main Authors: Diana C. Pachajoa, Catalina Tobón, Juan P. Ugarte, Javier Saiz
Format: Article
Language:English
Published: Instituto Tecnológico Metropolitano 2017-09-01
Series:TecnoLógicas
Subjects:
Online Access:http://itmojs.itm.edu.co/index.php/tecnologicas/article/view/1138/984
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spelling doaj-05fea421e25948daacc82c734314ced42020-11-25T00:17:51ZengInstituto Tecnológico MetropolitanoTecnoLógicas0123-77992256-53372017-09-012040113123CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico studyDiana C. Pachajoa0Catalina Tobón1Juan P. Ugarte2Javier Saiz3Instituto Tecnológico MetropolitanoUniversidad de MedellínUniversidad de San BuenaventuraUniversidad Politécnica de ValenciaExposure to air pollutants like carbon monoxide (CO), lead (Pb++) and sulfur dioxide (SO2) promotes the occurrence of cardiovascular diseases. Experimental studies have shown that CO, Pb++ and SO2 block L-type calcium channels, reducing the calcium current (ICaL) and the action potential duration (APD), which favors the initiation of atrial arrhythmias. The goal is to study the effects of CO, Pb++ and SO2 at different concentrations on ICaL and action potential using computational simulation. For this purpose, models of the effects of the air pollutants on the atrial L-type calcium channel were developed and were incorporated into a mathematical model of a human atrial cell. The results suggest that CO, Pb++ and SO2 block the ICaL current in a fraction that increases along with the concentration, generating an APD shortening. These results are consistent with experimental studies. The combined effect of the three air pollutants produced an APD shortening, which is considered to be a pro-arrhythmic effect.http://itmojs.itm.edu.co/index.php/tecnologicas/article/view/1138/984Air pollutionatrial action potentialcalcium channelin silico models
collection DOAJ
language English
format Article
sources DOAJ
author Diana C. Pachajoa
Catalina Tobón
Juan P. Ugarte
Javier Saiz
spellingShingle Diana C. Pachajoa
Catalina Tobón
Juan P. Ugarte
Javier Saiz
CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
TecnoLógicas
Air pollution
atrial action potential
calcium channel
in silico models
author_facet Diana C. Pachajoa
Catalina Tobón
Juan P. Ugarte
Javier Saiz
author_sort Diana C. Pachajoa
title CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
title_short CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
title_full CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
title_fullStr CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
title_full_unstemmed CO, Pb++ and SO2 effects on L-type calcium channel and action potential in human atrial myocytes. In silico study
title_sort co, pb++ and so2 effects on l-type calcium channel and action potential in human atrial myocytes. in silico study
publisher Instituto Tecnológico Metropolitano
series TecnoLógicas
issn 0123-7799
2256-5337
publishDate 2017-09-01
description Exposure to air pollutants like carbon monoxide (CO), lead (Pb++) and sulfur dioxide (SO2) promotes the occurrence of cardiovascular diseases. Experimental studies have shown that CO, Pb++ and SO2 block L-type calcium channels, reducing the calcium current (ICaL) and the action potential duration (APD), which favors the initiation of atrial arrhythmias. The goal is to study the effects of CO, Pb++ and SO2 at different concentrations on ICaL and action potential using computational simulation. For this purpose, models of the effects of the air pollutants on the atrial L-type calcium channel were developed and were incorporated into a mathematical model of a human atrial cell. The results suggest that CO, Pb++ and SO2 block the ICaL current in a fraction that increases along with the concentration, generating an APD shortening. These results are consistent with experimental studies. The combined effect of the three air pollutants produced an APD shortening, which is considered to be a pro-arrhythmic effect.
topic Air pollution
atrial action potential
calcium channel
in silico models
url http://itmojs.itm.edu.co/index.php/tecnologicas/article/view/1138/984
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AT catalinatobon copbandso2effectsonltypecalciumchannelandactionpotentialinhumanatrialmyocytesinsilicostudy
AT juanpugarte copbandso2effectsonltypecalciumchannelandactionpotentialinhumanatrialmyocytesinsilicostudy
AT javiersaiz copbandso2effectsonltypecalciumchannelandactionpotentialinhumanatrialmyocytesinsilicostudy
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