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Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts

INTRODUCTION: Ageing and several age-related chronic conditions including obesity, insulin resistance and hypertension are associated with mitochondrial dysfunction and represent independent risk factors for atrial fibrillation (AF). MATERIALS AND METHODS: Atrial arrhythmogenesis was investigated in...

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Autores principales: Valli, Haseeb, Ahmad, Shiraz, Chadda, Karan R., Al-Hadithi, Ali B.A.K., Grace, Andrew A., Jeevaratnam, Kamalan, Huang, Christopher L.-H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier Science Ireland 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5652526/
https://www.ncbi.nlm.nih.gov/pubmed/28919427
http://dx.doi.org/10.1016/j.mad.2017.09.002
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author Valli, Haseeb
Ahmad, Shiraz
Chadda, Karan R.
Al-Hadithi, Ali B.A.K.
Grace, Andrew A.
Jeevaratnam, Kamalan
Huang, Christopher L.-H.
author_facet Valli, Haseeb
Ahmad, Shiraz
Chadda, Karan R.
Al-Hadithi, Ali B.A.K.
Grace, Andrew A.
Jeevaratnam, Kamalan
Huang, Christopher L.-H.
author_sort Valli, Haseeb
collection PubMed
description INTRODUCTION: Ageing and several age-related chronic conditions including obesity, insulin resistance and hypertension are associated with mitochondrial dysfunction and represent independent risk factors for atrial fibrillation (AF). MATERIALS AND METHODS: Atrial arrhythmogenesis was investigated in Langendorff-perfused young (3–4 month) and aged (>12 month), wild type (WT) and peroxisome proliferator activated receptor-γ coactivator-1β deficient (Pgc-1β(−/−)) murine hearts modeling age-dependent chronic mitochondrial dysfunction during regular pacing and programmed electrical stimulation (PES). RESULTS AND DISCUSSION: The Pgc-1β(−/−) genotype was associated with a pro-arrhythmic phenotype progressing with age. Young and aged Pgc-1β(−/−) hearts showed compromised maximum action potential (AP) depolarization rates, (dV/dt)(max), prolonged AP latencies reflecting slowed action potential (AP) conduction, similar effective refractory periods and baseline action potential durations (APD(90)) but shortened APD(90) in APs in response to extrasystolic stimuli at short stimulation intervals. Electrical properties of APs triggering arrhythmia were similar in WT and Pgc-1β(−/−) hearts. Pgc-1β(−/−) hearts showed accelerated age-dependent fibrotic change relative to WT, with young Pgc-1β(−/−) hearts displaying similar fibrotic change as aged WT, and aged Pgc-1β(−/−) hearts the greatest fibrotic change. Mitochondrial deficits thus result in an arrhythmic substrate, through slowed AP conduction and altered repolarisation characteristics, arising from alterations in electrophysiological properties and accelerated structural change.
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spelling pubmed-56525262017-10-30 Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts Valli, Haseeb Ahmad, Shiraz Chadda, Karan R. Al-Hadithi, Ali B.A.K. Grace, Andrew A. Jeevaratnam, Kamalan Huang, Christopher L.-H. Mech Ageing Dev Article INTRODUCTION: Ageing and several age-related chronic conditions including obesity, insulin resistance and hypertension are associated with mitochondrial dysfunction and represent independent risk factors for atrial fibrillation (AF). MATERIALS AND METHODS: Atrial arrhythmogenesis was investigated in Langendorff-perfused young (3–4 month) and aged (>12 month), wild type (WT) and peroxisome proliferator activated receptor-γ coactivator-1β deficient (Pgc-1β(−/−)) murine hearts modeling age-dependent chronic mitochondrial dysfunction during regular pacing and programmed electrical stimulation (PES). RESULTS AND DISCUSSION: The Pgc-1β(−/−) genotype was associated with a pro-arrhythmic phenotype progressing with age. Young and aged Pgc-1β(−/−) hearts showed compromised maximum action potential (AP) depolarization rates, (dV/dt)(max), prolonged AP latencies reflecting slowed action potential (AP) conduction, similar effective refractory periods and baseline action potential durations (APD(90)) but shortened APD(90) in APs in response to extrasystolic stimuli at short stimulation intervals. Electrical properties of APs triggering arrhythmia were similar in WT and Pgc-1β(−/−) hearts. Pgc-1β(−/−) hearts showed accelerated age-dependent fibrotic change relative to WT, with young Pgc-1β(−/−) hearts displaying similar fibrotic change as aged WT, and aged Pgc-1β(−/−) hearts the greatest fibrotic change. Mitochondrial deficits thus result in an arrhythmic substrate, through slowed AP conduction and altered repolarisation characteristics, arising from alterations in electrophysiological properties and accelerated structural change. Elsevier Science Ireland 2017-10 /pmc/articles/PMC5652526/ /pubmed/28919427 http://dx.doi.org/10.1016/j.mad.2017.09.002 Text en © 2017 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Valli, Haseeb
Ahmad, Shiraz
Chadda, Karan R.
Al-Hadithi, Ali B.A.K.
Grace, Andrew A.
Jeevaratnam, Kamalan
Huang, Christopher L.-H.
Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title_full Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title_fullStr Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title_full_unstemmed Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title_short Age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in Pgc-1β deficient murine hearts
title_sort age-dependent atrial arrhythmic phenotype secondary to mitochondrial dysfunction in pgc-1β deficient murine hearts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5652526/
https://www.ncbi.nlm.nih.gov/pubmed/28919427
http://dx.doi.org/10.1016/j.mad.2017.09.002
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