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Cardiac progenitors instruct second heart field fate through Wnts

The heart develops in a synchronized sequence of proliferation and differentiation of cardiac progenitor cells (CPCs) from two anatomically distinct pools of cells, the first heart field (FHF) and second heart field (SHF). Congenital heart defects arise upon dysregulation of these processes, many of...

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Autores principales: Miyamoto, Matthew, Kannan, Suraj, Anderson, Matthew J., Liu, Xihe, Suh, David, Htet, Myo, Li, Biyi, Kakani, Tejasvi, Murphy, Sean, Tampakakis, Emmanouil, Lewandoski, Mark, Andersen, Peter, Uosaki, Hideki, Kwon, Chulan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942880/
https://www.ncbi.nlm.nih.gov/pubmed/36649430
http://dx.doi.org/10.1073/pnas.2217687120
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author Miyamoto, Matthew
Kannan, Suraj
Anderson, Matthew J.
Liu, Xihe
Suh, David
Htet, Myo
Li, Biyi
Kakani, Tejasvi
Murphy, Sean
Tampakakis, Emmanouil
Lewandoski, Mark
Andersen, Peter
Uosaki, Hideki
Kwon, Chulan
author_facet Miyamoto, Matthew
Kannan, Suraj
Anderson, Matthew J.
Liu, Xihe
Suh, David
Htet, Myo
Li, Biyi
Kakani, Tejasvi
Murphy, Sean
Tampakakis, Emmanouil
Lewandoski, Mark
Andersen, Peter
Uosaki, Hideki
Kwon, Chulan
author_sort Miyamoto, Matthew
collection PubMed
description The heart develops in a synchronized sequence of proliferation and differentiation of cardiac progenitor cells (CPCs) from two anatomically distinct pools of cells, the first heart field (FHF) and second heart field (SHF). Congenital heart defects arise upon dysregulation of these processes, many of which are restricted to derivatives of the FHF or SHF. Of the conserved set of signaling pathways that regulate development, the Wnt signaling pathway has long been known for its importance in SHF development. The source of such Wnts has remained elusive, though it has been postulated that these Wnts are secreted from ectodermal or endodermal sources. The central question remains unanswered: Where do these Wnts come from? Here, we show that CPCs autoregulate SHF development via Wnt through genetic manipulation of a key Wnt export protein (Wls), scRNA-seq analysis of CPCs, and use of our precardiac organoid system. Through this, we identify dysregulated developmental trajectories of anterior SHF cell fate, leading to a striking single ventricle phenotype in knockout embryos. We then applied our findings to our precardiac organoid model and found that Wnt2 is sufficient to restore SHF cell fate in our model of disrupted endogenous Wnt signaling. In this study, we provide a basis for SHF cell fate decision—proliferation vs. differentiation—autoregulated by CPCs through Wnt.
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spelling pubmed-99428802023-02-22 Cardiac progenitors instruct second heart field fate through Wnts Miyamoto, Matthew Kannan, Suraj Anderson, Matthew J. Liu, Xihe Suh, David Htet, Myo Li, Biyi Kakani, Tejasvi Murphy, Sean Tampakakis, Emmanouil Lewandoski, Mark Andersen, Peter Uosaki, Hideki Kwon, Chulan Proc Natl Acad Sci U S A Biological Sciences The heart develops in a synchronized sequence of proliferation and differentiation of cardiac progenitor cells (CPCs) from two anatomically distinct pools of cells, the first heart field (FHF) and second heart field (SHF). Congenital heart defects arise upon dysregulation of these processes, many of which are restricted to derivatives of the FHF or SHF. Of the conserved set of signaling pathways that regulate development, the Wnt signaling pathway has long been known for its importance in SHF development. The source of such Wnts has remained elusive, though it has been postulated that these Wnts are secreted from ectodermal or endodermal sources. The central question remains unanswered: Where do these Wnts come from? Here, we show that CPCs autoregulate SHF development via Wnt through genetic manipulation of a key Wnt export protein (Wls), scRNA-seq analysis of CPCs, and use of our precardiac organoid system. Through this, we identify dysregulated developmental trajectories of anterior SHF cell fate, leading to a striking single ventricle phenotype in knockout embryos. We then applied our findings to our precardiac organoid model and found that Wnt2 is sufficient to restore SHF cell fate in our model of disrupted endogenous Wnt signaling. In this study, we provide a basis for SHF cell fate decision—proliferation vs. differentiation—autoregulated by CPCs through Wnt. National Academy of Sciences 2023-01-17 2023-01-24 /pmc/articles/PMC9942880/ /pubmed/36649430 http://dx.doi.org/10.1073/pnas.2217687120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Miyamoto, Matthew
Kannan, Suraj
Anderson, Matthew J.
Liu, Xihe
Suh, David
Htet, Myo
Li, Biyi
Kakani, Tejasvi
Murphy, Sean
Tampakakis, Emmanouil
Lewandoski, Mark
Andersen, Peter
Uosaki, Hideki
Kwon, Chulan
Cardiac progenitors instruct second heart field fate through Wnts
title Cardiac progenitors instruct second heart field fate through Wnts
title_full Cardiac progenitors instruct second heart field fate through Wnts
title_fullStr Cardiac progenitors instruct second heart field fate through Wnts
title_full_unstemmed Cardiac progenitors instruct second heart field fate through Wnts
title_short Cardiac progenitors instruct second heart field fate through Wnts
title_sort cardiac progenitors instruct second heart field fate through wnts
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942880/
https://www.ncbi.nlm.nih.gov/pubmed/36649430
http://dx.doi.org/10.1073/pnas.2217687120
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