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Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development

BACKGROUND: Defects in cardiac septation are the most common form of congenital heart disease, but the mechanisms underlying these defects are still poorly understood. The small GTPase Rac1 is implicated in planar cell polarity of epithelial cells in Drosophila; however, its role in mammalian cardio...

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Autores principales: Leung, Carmen, Lu, Xiangru, Liu, Murong, Feng, Qingping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4323834/
https://www.ncbi.nlm.nih.gov/pubmed/25315346
http://dx.doi.org/10.1161/JAHA.114.001271
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author Leung, Carmen
Lu, Xiangru
Liu, Murong
Feng, Qingping
author_facet Leung, Carmen
Lu, Xiangru
Liu, Murong
Feng, Qingping
author_sort Leung, Carmen
collection PubMed
description BACKGROUND: Defects in cardiac septation are the most common form of congenital heart disease, but the mechanisms underlying these defects are still poorly understood. The small GTPase Rac1 is implicated in planar cell polarity of epithelial cells in Drosophila; however, its role in mammalian cardiomyocyte polarity is not clear. We tested the hypothesis that Rac1 signaling in the second heart field regulates cardiomyocyte polarity, chamber septation, and right ventricle development during embryonic heart development. METHODS AND RESULTS: Mice with second heart field–specific deficiency of Rac1 (Rac1(SHF)) exhibited ventricular and atrial septal defects, a thinner right ventricle myocardium, and a bifid cardiac apex. Fate‐mapping analysis showed that second heart field contribution to the interventricular septum and right ventricle was deficient in Rac1(SHF) hearts. Notably, cardiomyocytes had a spherical shape with disrupted F‐actin filaments in Rac1(SHF) compared with elongated and well‐aligned cardiomyocytes in littermate controls. Expression of Scrib, a core protein in planar cell polarity, was lost in Rac1(SHF) hearts with decreased expression of WAVE and Arp2/3, leading to decreased migratory ability. In addition, Rac1‐deficient neonatal cardiomyocytes displayed defects in cell projections, lamellipodia formation, and cell elongation. Furthermore, apoptosis was increased and the expression of Gata4, Tbx5, Nkx2.5, and Hand2 transcription factors was decreased in the Rac1(SHF) right ventricle myocardium. CONCLUSIONS: Deficiency of Rac1 in the second heart field impairs elongation and cytoskeleton organization of cardiomyocytes and results in congenital septal defects, thin right ventricle myocardium, and a bifid cardiac apex. Our study suggests that Rac1 signaling is critical to cardiomyocyte polarity and embryonic heart development.
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spelling pubmed-43238342015-02-23 Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development Leung, Carmen Lu, Xiangru Liu, Murong Feng, Qingping J Am Heart Assoc Original Research BACKGROUND: Defects in cardiac septation are the most common form of congenital heart disease, but the mechanisms underlying these defects are still poorly understood. The small GTPase Rac1 is implicated in planar cell polarity of epithelial cells in Drosophila; however, its role in mammalian cardiomyocyte polarity is not clear. We tested the hypothesis that Rac1 signaling in the second heart field regulates cardiomyocyte polarity, chamber septation, and right ventricle development during embryonic heart development. METHODS AND RESULTS: Mice with second heart field–specific deficiency of Rac1 (Rac1(SHF)) exhibited ventricular and atrial septal defects, a thinner right ventricle myocardium, and a bifid cardiac apex. Fate‐mapping analysis showed that second heart field contribution to the interventricular septum and right ventricle was deficient in Rac1(SHF) hearts. Notably, cardiomyocytes had a spherical shape with disrupted F‐actin filaments in Rac1(SHF) compared with elongated and well‐aligned cardiomyocytes in littermate controls. Expression of Scrib, a core protein in planar cell polarity, was lost in Rac1(SHF) hearts with decreased expression of WAVE and Arp2/3, leading to decreased migratory ability. In addition, Rac1‐deficient neonatal cardiomyocytes displayed defects in cell projections, lamellipodia formation, and cell elongation. Furthermore, apoptosis was increased and the expression of Gata4, Tbx5, Nkx2.5, and Hand2 transcription factors was decreased in the Rac1(SHF) right ventricle myocardium. CONCLUSIONS: Deficiency of Rac1 in the second heart field impairs elongation and cytoskeleton organization of cardiomyocytes and results in congenital septal defects, thin right ventricle myocardium, and a bifid cardiac apex. Our study suggests that Rac1 signaling is critical to cardiomyocyte polarity and embryonic heart development. Blackwell Publishing Ltd 2014-10-14 /pmc/articles/PMC4323834/ /pubmed/25315346 http://dx.doi.org/10.1161/JAHA.114.001271 Text en © 2014 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley Blackwell. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Leung, Carmen
Lu, Xiangru
Liu, Murong
Feng, Qingping
Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title_full Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title_fullStr Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title_full_unstemmed Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title_short Rac1 Signaling Is Critical to Cardiomyocyte Polarity and Embryonic Heart Development
title_sort rac1 signaling is critical to cardiomyocyte polarity and embryonic heart development
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4323834/
https://www.ncbi.nlm.nih.gov/pubmed/25315346
http://dx.doi.org/10.1161/JAHA.114.001271
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