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Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia

Background: Endurance athletes are prone to bradyarrhythmias, which in the long-term may underscore the increased incidence of pacemaker implantation reported in this population. Our previous work in rodent models has shown training-induced sinus bradycardia to be due to microRNA (miR)-mediated tran...

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Autores principales: Bidaud, Isabelle, D’Souza, Alicia, Forte, Gabriella, Torre, Eleonora, Greuet, Denis, Thirard, Steeve, Anderson, Cali, Chung You Chong, Antony, Torrente, Angelo G., Roussel, Julien, Wickman, Kevin, Boyett, Mark R., Mangoni, Matteo E., Mesirca, Pietro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857143/
https://www.ncbi.nlm.nih.gov/pubmed/33551824
http://dx.doi.org/10.3389/fphys.2020.519382
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author Bidaud, Isabelle
D’Souza, Alicia
Forte, Gabriella
Torre, Eleonora
Greuet, Denis
Thirard, Steeve
Anderson, Cali
Chung You Chong, Antony
Torrente, Angelo G.
Roussel, Julien
Wickman, Kevin
Boyett, Mark R.
Mangoni, Matteo E.
Mesirca, Pietro
author_facet Bidaud, Isabelle
D’Souza, Alicia
Forte, Gabriella
Torre, Eleonora
Greuet, Denis
Thirard, Steeve
Anderson, Cali
Chung You Chong, Antony
Torrente, Angelo G.
Roussel, Julien
Wickman, Kevin
Boyett, Mark R.
Mangoni, Matteo E.
Mesirca, Pietro
author_sort Bidaud, Isabelle
collection PubMed
description Background: Endurance athletes are prone to bradyarrhythmias, which in the long-term may underscore the increased incidence of pacemaker implantation reported in this population. Our previous work in rodent models has shown training-induced sinus bradycardia to be due to microRNA (miR)-mediated transcriptional remodeling of the HCN4 channel, leading to a reduction of the “funny” (I(f)) current in the sinoatrial node (SAN). Objective: To test if genetic ablation of G-protein-gated inwardly rectifying potassium channel, also known as I(KACh) channels prevents sinus bradycardia induced by intensive exercise training in mice. Methods: Control wild-type (WT) and mice lacking GIRK4 (Girk4(–/–)), an integral subunit of I(KACh) were assigned to trained or sedentary groups. Mice in the trained group underwent 1-h exercise swimming twice a day for 28 days, 7 days per week. We performed electrocardiogram recordings and echocardiography in both groups at baseline, during and after the training period. At training cessation, mice were euthanized and SAN tissues were isolated for patch clamp recordings in isolated SAN cells and molecular profiling by quantitative PCR (qPCR) and western blotting. Results: At swimming cessation trained WT mice presented with a significantly lower resting HR that was reversible by acute I(KACh) block whereas Girk4(–/–) mice failed to develop a training-induced sinus bradycardia. In line with HR reduction, action potential rate, density of I(f), as well as of T- and L-type Ca(2+) currents (I(CaT) and I(CaL)) were significantly reduced only in SAN cells obtained from WT-trained mice. I(f) reduction in WT mice was concomitant with downregulation of HCN4 transcript and protein, attributable to increased expression of corresponding repressor microRNAs (miRs) whereas reduced I(CaL) in WT mice was associated with reduced Ca(v)1.3 protein levels. Strikingly, I(KACh) ablation suppressed all training-induced molecular remodeling observed in WT mice. Conclusion: Genetic ablation of cardiac I(KACh) in mice prevents exercise-induced sinus bradycardia by suppressing training induced remodeling of inward currents I(f), I(CaT) and I(CaL) due in part to the prevention of miR-mediated transcriptional remodeling of HCN4 and likely post transcriptional remodeling of Ca(v)1.3. Strategies targeting cardiac I(KACh) may therefore represent an alternative to pacemaker implantation for bradyarrhythmias seen in some veteran athletes.
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spelling pubmed-78571432021-02-04 Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia Bidaud, Isabelle D’Souza, Alicia Forte, Gabriella Torre, Eleonora Greuet, Denis Thirard, Steeve Anderson, Cali Chung You Chong, Antony Torrente, Angelo G. Roussel, Julien Wickman, Kevin Boyett, Mark R. Mangoni, Matteo E. Mesirca, Pietro Front Physiol Physiology Background: Endurance athletes are prone to bradyarrhythmias, which in the long-term may underscore the increased incidence of pacemaker implantation reported in this population. Our previous work in rodent models has shown training-induced sinus bradycardia to be due to microRNA (miR)-mediated transcriptional remodeling of the HCN4 channel, leading to a reduction of the “funny” (I(f)) current in the sinoatrial node (SAN). Objective: To test if genetic ablation of G-protein-gated inwardly rectifying potassium channel, also known as I(KACh) channels prevents sinus bradycardia induced by intensive exercise training in mice. Methods: Control wild-type (WT) and mice lacking GIRK4 (Girk4(–/–)), an integral subunit of I(KACh) were assigned to trained or sedentary groups. Mice in the trained group underwent 1-h exercise swimming twice a day for 28 days, 7 days per week. We performed electrocardiogram recordings and echocardiography in both groups at baseline, during and after the training period. At training cessation, mice were euthanized and SAN tissues were isolated for patch clamp recordings in isolated SAN cells and molecular profiling by quantitative PCR (qPCR) and western blotting. Results: At swimming cessation trained WT mice presented with a significantly lower resting HR that was reversible by acute I(KACh) block whereas Girk4(–/–) mice failed to develop a training-induced sinus bradycardia. In line with HR reduction, action potential rate, density of I(f), as well as of T- and L-type Ca(2+) currents (I(CaT) and I(CaL)) were significantly reduced only in SAN cells obtained from WT-trained mice. I(f) reduction in WT mice was concomitant with downregulation of HCN4 transcript and protein, attributable to increased expression of corresponding repressor microRNAs (miRs) whereas reduced I(CaL) in WT mice was associated with reduced Ca(v)1.3 protein levels. Strikingly, I(KACh) ablation suppressed all training-induced molecular remodeling observed in WT mice. Conclusion: Genetic ablation of cardiac I(KACh) in mice prevents exercise-induced sinus bradycardia by suppressing training induced remodeling of inward currents I(f), I(CaT) and I(CaL) due in part to the prevention of miR-mediated transcriptional remodeling of HCN4 and likely post transcriptional remodeling of Ca(v)1.3. Strategies targeting cardiac I(KACh) may therefore represent an alternative to pacemaker implantation for bradyarrhythmias seen in some veteran athletes. Frontiers Media S.A. 2021-01-20 /pmc/articles/PMC7857143/ /pubmed/33551824 http://dx.doi.org/10.3389/fphys.2020.519382 Text en Copyright © 2021 Bidaud, D’Souza, Forte, Torre, Greuet, Thirard, Anderson, Chung You Chong, Torrente, Roussel, Wickman, Boyett, Mangoni and Mesirca. 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
Bidaud, Isabelle
D’Souza, Alicia
Forte, Gabriella
Torre, Eleonora
Greuet, Denis
Thirard, Steeve
Anderson, Cali
Chung You Chong, Antony
Torrente, Angelo G.
Roussel, Julien
Wickman, Kevin
Boyett, Mark R.
Mangoni, Matteo E.
Mesirca, Pietro
Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title_full Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title_fullStr Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title_full_unstemmed Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title_short Genetic Ablation of G Protein-Gated Inwardly Rectifying K(+) Channels Prevents Training-Induced Sinus Bradycardia
title_sort genetic ablation of g protein-gated inwardly rectifying k(+) channels prevents training-induced sinus bradycardia
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7857143/
https://www.ncbi.nlm.nih.gov/pubmed/33551824
http://dx.doi.org/10.3389/fphys.2020.519382
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