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A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus

Patent ductus arteriosus is a life-threatening condition frequent in premature newborns but also present in some term infants. Current mouse models of this malformation generally lead to perinatal death, not reproducing the full phenotypic spectrum in humans, in whom genetic inheritance appears comp...

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Autores principales: Yajima, Ichiro, Colombo, Sophie, Puig, Isabel, Champeval, Delphine, Kumasaka, Mayuko, Belloir, Elodie, Bonaventure, Jacky, Mark, Manuel, Yamamoto, Hiroaki, Taketo, Mark M., Choquet, Philippe, Etchevers, Heather C., Beermann, Friedrich, Delmas, Véronique, Monassier, Laurent, Larue, Lionel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3561373/
https://www.ncbi.nlm.nih.gov/pubmed/23382837
http://dx.doi.org/10.1371/journal.pone.0053183
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author Yajima, Ichiro
Colombo, Sophie
Puig, Isabel
Champeval, Delphine
Kumasaka, Mayuko
Belloir, Elodie
Bonaventure, Jacky
Mark, Manuel
Yamamoto, Hiroaki
Taketo, Mark M.
Choquet, Philippe
Etchevers, Heather C.
Beermann, Friedrich
Delmas, Véronique
Monassier, Laurent
Larue, Lionel
author_facet Yajima, Ichiro
Colombo, Sophie
Puig, Isabel
Champeval, Delphine
Kumasaka, Mayuko
Belloir, Elodie
Bonaventure, Jacky
Mark, Manuel
Yamamoto, Hiroaki
Taketo, Mark M.
Choquet, Philippe
Etchevers, Heather C.
Beermann, Friedrich
Delmas, Véronique
Monassier, Laurent
Larue, Lionel
author_sort Yajima, Ichiro
collection PubMed
description Patent ductus arteriosus is a life-threatening condition frequent in premature newborns but also present in some term infants. Current mouse models of this malformation generally lead to perinatal death, not reproducing the full phenotypic spectrum in humans, in whom genetic inheritance appears complex. The ductus arteriosus (DA), a temporary fetal vessel that bypasses the lungs by shunting the aortic arch to the pulmonary artery, is constituted by smooth muscle cells of distinct origins (SMC1 and SMC2) and many fewer melanocytes. To understand novel mechanisms preventing DA closure at birth, we evaluated the importance of cell fate specification in SMC that form the DA during embryonic development. Upon specific Tyr::Cre-driven activation of Wnt/β-catenin signaling at the time of cell fate specification, melanocytes replaced the SMC2 population of the DA, suggesting that SMC2 and melanocytes have a common precursor. The number of SMC1 in the DA remained similar to that in controls, but insufficient to allow full DA closure at birth. Thus, there was no cellular compensation by SMC1 for the loss of SMC2. Mice in which only melanocytes were genetically ablated after specification from their potential common precursor with SMC2, demonstrated that differentiated melanocytes themselves do not affect DA closure. Loss of the SMC2 population, independent of the presence of melanocytes, is therefore a cause of patent ductus arteriosus and premature death in the first months of life. Our results indicate that patent ductus arteriosus can result from the insufficient differentiation, proliferation, or contractility of a specific smooth muscle subpopulation that shares a common neural crest precursor with cardiovascular melanocytes.
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spelling pubmed-35613732013-02-04 A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus Yajima, Ichiro Colombo, Sophie Puig, Isabel Champeval, Delphine Kumasaka, Mayuko Belloir, Elodie Bonaventure, Jacky Mark, Manuel Yamamoto, Hiroaki Taketo, Mark M. Choquet, Philippe Etchevers, Heather C. Beermann, Friedrich Delmas, Véronique Monassier, Laurent Larue, Lionel PLoS One Research Article Patent ductus arteriosus is a life-threatening condition frequent in premature newborns but also present in some term infants. Current mouse models of this malformation generally lead to perinatal death, not reproducing the full phenotypic spectrum in humans, in whom genetic inheritance appears complex. The ductus arteriosus (DA), a temporary fetal vessel that bypasses the lungs by shunting the aortic arch to the pulmonary artery, is constituted by smooth muscle cells of distinct origins (SMC1 and SMC2) and many fewer melanocytes. To understand novel mechanisms preventing DA closure at birth, we evaluated the importance of cell fate specification in SMC that form the DA during embryonic development. Upon specific Tyr::Cre-driven activation of Wnt/β-catenin signaling at the time of cell fate specification, melanocytes replaced the SMC2 population of the DA, suggesting that SMC2 and melanocytes have a common precursor. The number of SMC1 in the DA remained similar to that in controls, but insufficient to allow full DA closure at birth. Thus, there was no cellular compensation by SMC1 for the loss of SMC2. Mice in which only melanocytes were genetically ablated after specification from their potential common precursor with SMC2, demonstrated that differentiated melanocytes themselves do not affect DA closure. Loss of the SMC2 population, independent of the presence of melanocytes, is therefore a cause of patent ductus arteriosus and premature death in the first months of life. Our results indicate that patent ductus arteriosus can result from the insufficient differentiation, proliferation, or contractility of a specific smooth muscle subpopulation that shares a common neural crest precursor with cardiovascular melanocytes. Public Library of Science 2013-01-31 /pmc/articles/PMC3561373/ /pubmed/23382837 http://dx.doi.org/10.1371/journal.pone.0053183 Text en © 2013 Yajima 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yajima, Ichiro
Colombo, Sophie
Puig, Isabel
Champeval, Delphine
Kumasaka, Mayuko
Belloir, Elodie
Bonaventure, Jacky
Mark, Manuel
Yamamoto, Hiroaki
Taketo, Mark M.
Choquet, Philippe
Etchevers, Heather C.
Beermann, Friedrich
Delmas, Véronique
Monassier, Laurent
Larue, Lionel
A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title_full A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title_fullStr A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title_full_unstemmed A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title_short A Subpopulation of Smooth Muscle Cells, Derived from Melanocyte-Competent Precursors, Prevents Patent Ductus Arteriosus
title_sort subpopulation of smooth muscle cells, derived from melanocyte-competent precursors, prevents patent ductus arteriosus
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3561373/
https://www.ncbi.nlm.nih.gov/pubmed/23382837
http://dx.doi.org/10.1371/journal.pone.0053183
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