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Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm

Atrial fibrillation (AF) is the most common cardiac arrhythmia and carries a significant risk of stroke and heart failure. The molecular etiologies of AF are poorly understood, leaving patients with limited therapeutic options. AF has been recognized as an inherited disease in almost 30% of patient...

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Autores principales: Müller, Iris I., Melville, David B., Tanwar, Vineeta, Rybski, Witold M., Mukherjee, Amrita, Shoemaker, M. Benjamin, Wang, Wan-Der, Schoenhard, John A., Roden, Dan M., Darbar, Dawood, Knapik, Ela W., Hatzopoulos, Antonis K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Limited 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597016/
https://www.ncbi.nlm.nih.gov/pubmed/23223679
http://dx.doi.org/10.1242/dmm.010488
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author Müller, Iris I.
Melville, David B.
Tanwar, Vineeta
Rybski, Witold M.
Mukherjee, Amrita
Shoemaker, M. Benjamin
Wang, Wan-Der
Schoenhard, John A.
Roden, Dan M.
Darbar, Dawood
Knapik, Ela W.
Hatzopoulos, Antonis K.
author_facet Müller, Iris I.
Melville, David B.
Tanwar, Vineeta
Rybski, Witold M.
Mukherjee, Amrita
Shoemaker, M. Benjamin
Wang, Wan-Der
Schoenhard, John A.
Roden, Dan M.
Darbar, Dawood
Knapik, Ela W.
Hatzopoulos, Antonis K.
author_sort Müller, Iris I.
collection PubMed
description Atrial fibrillation (AF) is the most common cardiac arrhythmia and carries a significant risk of stroke and heart failure. The molecular etiologies of AF are poorly understood, leaving patients with limited therapeutic options. AF has been recognized as an inherited disease in almost 30% of patient cases. However, few genetic loci have been identified and the mechanisms linking genetic variants to AF susceptibility remain unclear. By sequencing 193 probands with lone AF, we identified a Q76E variant within the coding sequence of the bone morphogenetic protein (BMP) antagonist gremlin-2 (GREM2) that increases its inhibitory activity. Functional modeling in zebrafish revealed that, through regulation of BMP signaling, GREM2 is required for cardiac laterality and atrial differentiation during embryonic development. GREM2 overactivity results in slower cardiac contraction rates in zebrafish, and induction of previously identified AF candidate genes encoding connexin-40, sarcolipin and atrial natriuretic peptide in differentiated mouse embryonic stem cells. By live heart imaging in zebrafish overexpressing wild-type or variant GREM2, we found abnormal contraction velocity specifically in atrial cardiomyocytes. These results implicate, for the first time, regulators of BMP signaling in human AF, providing mechanistic insights into the pathogenesis of the disease and identifying potential new therapeutic targets.
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spelling pubmed-35970162013-06-19 Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm Müller, Iris I. Melville, David B. Tanwar, Vineeta Rybski, Witold M. Mukherjee, Amrita Shoemaker, M. Benjamin Wang, Wan-Der Schoenhard, John A. Roden, Dan M. Darbar, Dawood Knapik, Ela W. Hatzopoulos, Antonis K. Dis Model Mech Research Articles Atrial fibrillation (AF) is the most common cardiac arrhythmia and carries a significant risk of stroke and heart failure. The molecular etiologies of AF are poorly understood, leaving patients with limited therapeutic options. AF has been recognized as an inherited disease in almost 30% of patient cases. However, few genetic loci have been identified and the mechanisms linking genetic variants to AF susceptibility remain unclear. By sequencing 193 probands with lone AF, we identified a Q76E variant within the coding sequence of the bone morphogenetic protein (BMP) antagonist gremlin-2 (GREM2) that increases its inhibitory activity. Functional modeling in zebrafish revealed that, through regulation of BMP signaling, GREM2 is required for cardiac laterality and atrial differentiation during embryonic development. GREM2 overactivity results in slower cardiac contraction rates in zebrafish, and induction of previously identified AF candidate genes encoding connexin-40, sarcolipin and atrial natriuretic peptide in differentiated mouse embryonic stem cells. By live heart imaging in zebrafish overexpressing wild-type or variant GREM2, we found abnormal contraction velocity specifically in atrial cardiomyocytes. These results implicate, for the first time, regulators of BMP signaling in human AF, providing mechanistic insights into the pathogenesis of the disease and identifying potential new therapeutic targets. The Company of Biologists Limited 2013-03 2012-12-07 /pmc/articles/PMC3597016/ /pubmed/23223679 http://dx.doi.org/10.1242/dmm.010488 Text en © 2013. Published by The Company of Biologists Ltd This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial Share Alike License (http://creativecommons.org/licenses/by-nc-sa/3.0), which permits unrestricted non-commercial use, distribution and reproduction in any medium provided that the original work is properly cited and all further distributions of the work or adaptation are subject to the same Creative Commons License terms.
spellingShingle Research Articles
Müller, Iris I.
Melville, David B.
Tanwar, Vineeta
Rybski, Witold M.
Mukherjee, Amrita
Shoemaker, M. Benjamin
Wang, Wan-Der
Schoenhard, John A.
Roden, Dan M.
Darbar, Dawood
Knapik, Ela W.
Hatzopoulos, Antonis K.
Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title_full Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title_fullStr Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title_full_unstemmed Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title_short Functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene GREM2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
title_sort functional modeling in zebrafish demonstrates that the atrial-fibrillation-associated gene grem2 regulates cardiac laterality, cardiomyocyte differentiation and atrial rhythm
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3597016/
https://www.ncbi.nlm.nih.gov/pubmed/23223679
http://dx.doi.org/10.1242/dmm.010488
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