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Cardiac Effects of Attenuating Gsα - Dependent Signaling

AIMS: Inhibition of β-adrenergic signalling plays a key role in treatment of heart failure. Gsα is essential for β-adrenergic signal transduction. In order to reduce side-effects of beta-adrenergic inhibition diminishing β-adrenergic signalling in the heart at the level of Gsα is a promising option....

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Autores principales: Streit, Marcus R., Weiss, Celine S., Meyer, Sören, Ochs, Marco M., Hagenmueller, Marco, Riffel, Johannes H., Buss, Sebastian J., Heger, Thomas, Katus, Hugo A., Hardt, Stefan E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727906/
https://www.ncbi.nlm.nih.gov/pubmed/26811901
http://dx.doi.org/10.1371/journal.pone.0146988
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author Streit, Marcus R.
Weiss, Celine S.
Meyer, Sören
Ochs, Marco M.
Hagenmueller, Marco
Riffel, Johannes H.
Buss, Sebastian J.
Heger, Thomas
Katus, Hugo A.
Hardt, Stefan E.
author_facet Streit, Marcus R.
Weiss, Celine S.
Meyer, Sören
Ochs, Marco M.
Hagenmueller, Marco
Riffel, Johannes H.
Buss, Sebastian J.
Heger, Thomas
Katus, Hugo A.
Hardt, Stefan E.
author_sort Streit, Marcus R.
collection PubMed
description AIMS: Inhibition of β-adrenergic signalling plays a key role in treatment of heart failure. Gsα is essential for β-adrenergic signal transduction. In order to reduce side-effects of beta-adrenergic inhibition diminishing β-adrenergic signalling in the heart at the level of Gsα is a promising option. METHODS AND RESULTS: We analyzed the influence of Gsα on regulation of myocardial function and development of cardiac hypertrophy, using a transgenic mouse model (C57BL6/J mice) overexpressing a dominant negative Gsα-mutant under control of the α-MHC-promotor. Cardiac phenotype was characterized in vivo and in vitro and under acute and chronic β-adrenergic stimulation. At rest, Gsα-DN-mice showed bradycardia (602 ± 13 vs. 660 ± 17 bpm, p<0.05) and decreased dp/dt(max) (5037 ± 546- vs. 6835 ± 505 mmHg/s, p = 0.02). No significant differences were found regarding ejection fraction, heart weight and cardiomyocyte size. β-blockade by propranolol revealed no baseline differences of hemodynamic parameters between wildtype and Gsα-DN-mice. Acute adrenergic stimulation resulted in decreased β-adrenergic responsiveness in Gsα-DN-mice. Under chronic adrenergic stimulation, wildtype mice developed myocardial hypertrophy associated with increase of LV/BW-ratio by 23% (4.4 ± 0.2 vs. 3.5 ± 0.1 mg/g, p<0.01) and cardiac myocyte size by 24% (14927 ± 442 px vs. 12013 ± 583 px, p<0.001). In contrast, both parameters were unchanged in Gsα-DN-mice after chronic isoproterenol stimulation. CONCLUSION: Overexpression of a dominant negative mutant of Gsα leads to decreased β-adrenergic responsiveness and is protective against isoproterenol-induced hypertrophy. Thus, Gsα-DN-mice provide novel insights into β-adrenergic signal transduction and its modulation in myocardial overload and failure.
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spelling pubmed-47279062016-02-03 Cardiac Effects of Attenuating Gsα - Dependent Signaling Streit, Marcus R. Weiss, Celine S. Meyer, Sören Ochs, Marco M. Hagenmueller, Marco Riffel, Johannes H. Buss, Sebastian J. Heger, Thomas Katus, Hugo A. Hardt, Stefan E. PLoS One Research Article AIMS: Inhibition of β-adrenergic signalling plays a key role in treatment of heart failure. Gsα is essential for β-adrenergic signal transduction. In order to reduce side-effects of beta-adrenergic inhibition diminishing β-adrenergic signalling in the heart at the level of Gsα is a promising option. METHODS AND RESULTS: We analyzed the influence of Gsα on regulation of myocardial function and development of cardiac hypertrophy, using a transgenic mouse model (C57BL6/J mice) overexpressing a dominant negative Gsα-mutant under control of the α-MHC-promotor. Cardiac phenotype was characterized in vivo and in vitro and under acute and chronic β-adrenergic stimulation. At rest, Gsα-DN-mice showed bradycardia (602 ± 13 vs. 660 ± 17 bpm, p<0.05) and decreased dp/dt(max) (5037 ± 546- vs. 6835 ± 505 mmHg/s, p = 0.02). No significant differences were found regarding ejection fraction, heart weight and cardiomyocyte size. β-blockade by propranolol revealed no baseline differences of hemodynamic parameters between wildtype and Gsα-DN-mice. Acute adrenergic stimulation resulted in decreased β-adrenergic responsiveness in Gsα-DN-mice. Under chronic adrenergic stimulation, wildtype mice developed myocardial hypertrophy associated with increase of LV/BW-ratio by 23% (4.4 ± 0.2 vs. 3.5 ± 0.1 mg/g, p<0.01) and cardiac myocyte size by 24% (14927 ± 442 px vs. 12013 ± 583 px, p<0.001). In contrast, both parameters were unchanged in Gsα-DN-mice after chronic isoproterenol stimulation. CONCLUSION: Overexpression of a dominant negative mutant of Gsα leads to decreased β-adrenergic responsiveness and is protective against isoproterenol-induced hypertrophy. Thus, Gsα-DN-mice provide novel insights into β-adrenergic signal transduction and its modulation in myocardial overload and failure. Public Library of Science 2016-01-26 /pmc/articles/PMC4727906/ /pubmed/26811901 http://dx.doi.org/10.1371/journal.pone.0146988 Text en © 2016 Streit 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
Streit, Marcus R.
Weiss, Celine S.
Meyer, Sören
Ochs, Marco M.
Hagenmueller, Marco
Riffel, Johannes H.
Buss, Sebastian J.
Heger, Thomas
Katus, Hugo A.
Hardt, Stefan E.
Cardiac Effects of Attenuating Gsα - Dependent Signaling
title Cardiac Effects of Attenuating Gsα - Dependent Signaling
title_full Cardiac Effects of Attenuating Gsα - Dependent Signaling
title_fullStr Cardiac Effects of Attenuating Gsα - Dependent Signaling
title_full_unstemmed Cardiac Effects of Attenuating Gsα - Dependent Signaling
title_short Cardiac Effects of Attenuating Gsα - Dependent Signaling
title_sort cardiac effects of attenuating gsα - dependent signaling
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4727906/
https://www.ncbi.nlm.nih.gov/pubmed/26811901
http://dx.doi.org/10.1371/journal.pone.0146988
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