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From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study

Variability refers to differences in physiological function between individuals, which may translate into different disease susceptibility and treatment efficacy. Experiments in human cardiomyocytes face wide variability and restricted tissue access; under these conditions, computational models are...

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Autores principales: Muszkiewicz, Anna, Liu, Xing, Bueno-Orovio, Alfonso, Lawson, Brodie A. J., Burrage, Kevin, Casadei, Barbara, Rodriguez, Blanca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Physiological Society 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6008144/
https://www.ncbi.nlm.nih.gov/pubmed/29351467
http://dx.doi.org/10.1152/ajpheart.00477.2017
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author Muszkiewicz, Anna
Liu, Xing
Bueno-Orovio, Alfonso
Lawson, Brodie A. J.
Burrage, Kevin
Casadei, Barbara
Rodriguez, Blanca
author_facet Muszkiewicz, Anna
Liu, Xing
Bueno-Orovio, Alfonso
Lawson, Brodie A. J.
Burrage, Kevin
Casadei, Barbara
Rodriguez, Blanca
author_sort Muszkiewicz, Anna
collection PubMed
description Variability refers to differences in physiological function between individuals, which may translate into different disease susceptibility and treatment efficacy. Experiments in human cardiomyocytes face wide variability and restricted tissue access; under these conditions, computational models are a useful complementary tool. We conducted a computational and experimental investigation in cardiomyocytes isolated from samples of the right atrial appendage of patients undergoing cardiac surgery to evaluate the impact of variability in action potentials (APs) and subcellular ionic densities on Ca(2+) transient dynamics. Results showed that 1) variability in APs and ionic densities is large, even within an apparently homogenous patient cohort, and translates into ±100% variation in ionic conductances; 2) experimentally calibrated populations of models with wide variations in ionic densities yield APs overlapping with those obtained experimentally, even if AP characteristics of the original generic model differed significantly from experimental APs; 3) model calibration with AP recordings restricts the variability in ionic densities affecting upstroke and resting potential, but redundancy in repolarization currents admits substantial variability in ionic densities; and 4) model populations constrained with experimental APs and ionic densities exhibit three Ca(2+) transient phenotypes, differing in intracellular Ca(2+) handling and Na(+)/Ca(2+) membrane extrusion. These findings advance our understanding of the impact of variability in human atrial electrophysiology. NEW & NOTEWORTHY Variability in human atrial electrophysiology is investigated by integrating for the first time cellular-level and ion channel recordings in computational electrophysiological models. Ion channel calibration restricts current densities but not cellular phenotypic variability. Reduced Na(+)/Ca(2+) exchanger is identified as a primary mechanism underlying diastolic Ca(2+) fluctuations in human atrial myocytes.
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spelling pubmed-60081442018-06-25 From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study Muszkiewicz, Anna Liu, Xing Bueno-Orovio, Alfonso Lawson, Brodie A. J. Burrage, Kevin Casadei, Barbara Rodriguez, Blanca Am J Physiol Heart Circ Physiol Research Article Variability refers to differences in physiological function between individuals, which may translate into different disease susceptibility and treatment efficacy. Experiments in human cardiomyocytes face wide variability and restricted tissue access; under these conditions, computational models are a useful complementary tool. We conducted a computational and experimental investigation in cardiomyocytes isolated from samples of the right atrial appendage of patients undergoing cardiac surgery to evaluate the impact of variability in action potentials (APs) and subcellular ionic densities on Ca(2+) transient dynamics. Results showed that 1) variability in APs and ionic densities is large, even within an apparently homogenous patient cohort, and translates into ±100% variation in ionic conductances; 2) experimentally calibrated populations of models with wide variations in ionic densities yield APs overlapping with those obtained experimentally, even if AP characteristics of the original generic model differed significantly from experimental APs; 3) model calibration with AP recordings restricts the variability in ionic densities affecting upstroke and resting potential, but redundancy in repolarization currents admits substantial variability in ionic densities; and 4) model populations constrained with experimental APs and ionic densities exhibit three Ca(2+) transient phenotypes, differing in intracellular Ca(2+) handling and Na(+)/Ca(2+) membrane extrusion. These findings advance our understanding of the impact of variability in human atrial electrophysiology. NEW & NOTEWORTHY Variability in human atrial electrophysiology is investigated by integrating for the first time cellular-level and ion channel recordings in computational electrophysiological models. Ion channel calibration restricts current densities but not cellular phenotypic variability. Reduced Na(+)/Ca(2+) exchanger is identified as a primary mechanism underlying diastolic Ca(2+) fluctuations in human atrial myocytes. American Physiological Society 2018-05-01 2017-12-22 /pmc/articles/PMC6008144/ /pubmed/29351467 http://dx.doi.org/10.1152/ajpheart.00477.2017 Text en Copyright © 2018 the American Physiological Society http://creativecommons.org/licenses/by/4.0/deed.en_US Licensed under Creative Commons Attribution CC-BY 4.0 (http://creativecommons.org/licenses/by/4.0/deed.en_US) : © the American Physiological Society.
spellingShingle Research Article
Muszkiewicz, Anna
Liu, Xing
Bueno-Orovio, Alfonso
Lawson, Brodie A. J.
Burrage, Kevin
Casadei, Barbara
Rodriguez, Blanca
From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title_full From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title_fullStr From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title_full_unstemmed From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title_short From ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
title_sort from ionic to cellular variability in human atrial myocytes: an integrative computational and experimental study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6008144/
https://www.ncbi.nlm.nih.gov/pubmed/29351467
http://dx.doi.org/10.1152/ajpheart.00477.2017
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