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Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells

Cardiac muscle differentiation in vivo is guided by sequential growth factor signals, including endoderm-derived diffusible factors, impinging on cardiogenic genes in the developing mesoderm. Previously, by RNA interference in AB2.2 mouse embryonic stem cells (mESCs), we identified the endodermal tr...

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Autores principales: Liu, Yu, Kaneda, Ruri, Leja, Thomas W, Subkhankulova, Tatiana, Tolmachov, Oleg, Minchiotti, Gabriella, Schwartz, Robert J, Barahona, Mauricio, Schneider, Michael D
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4260090/
https://www.ncbi.nlm.nih.gov/pubmed/24585688
http://dx.doi.org/10.1002/stem.1695
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author Liu, Yu
Kaneda, Ruri
Leja, Thomas W
Subkhankulova, Tatiana
Tolmachov, Oleg
Minchiotti, Gabriella
Schwartz, Robert J
Barahona, Mauricio
Schneider, Michael D
author_facet Liu, Yu
Kaneda, Ruri
Leja, Thomas W
Subkhankulova, Tatiana
Tolmachov, Oleg
Minchiotti, Gabriella
Schwartz, Robert J
Barahona, Mauricio
Schneider, Michael D
author_sort Liu, Yu
collection PubMed
description Cardiac muscle differentiation in vivo is guided by sequential growth factor signals, including endoderm-derived diffusible factors, impinging on cardiogenic genes in the developing mesoderm. Previously, by RNA interference in AB2.2 mouse embryonic stem cells (mESCs), we identified the endodermal transcription factor Sox17 as essential for Mesp1 induction in primitive mesoderm and subsequent cardiac muscle differentiation. However, downstream effectors of Sox17 remained to be proven functionally. In this study, we used genome-wide profiling of Sox17-dependent genes in AB2.2 cells, RNA interference, chromatin immunoprecipitation, and luciferase reporter genes to dissect this pathway. Sox17 was required not only for Hhex (a second endodermal transcription factor) but also for Cer1, a growth factor inhibitor from endoderm that, like Hhex, controls mesoderm patterning in Xenopus toward a cardiac fate. Suppressing Hhex or Cer1 blocked cardiac myogenesis, although at a later stage than induction of Mesp1/2. Hhex was required but not sufficient for Cer1 expression. Over-expression of Sox17 induced endogenous Cer1 and sequence-specific transcription of a Cer1 reporter gene. Forced expression of Cer1 was sufficient to rescue cardiac differentiation in Hhex-deficient cells. Thus, Hhex and Cer1 are indispensable components of the Sox17 pathway for cardiopoiesis in mESCs, acting at a stage downstream from Mesp1/2. Stem Cells 2014;32:1515–1526
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spelling pubmed-42600902014-12-11 Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells Liu, Yu Kaneda, Ruri Leja, Thomas W Subkhankulova, Tatiana Tolmachov, Oleg Minchiotti, Gabriella Schwartz, Robert J Barahona, Mauricio Schneider, Michael D Stem Cells Embryonic Stem Cells/Induced Pluripotent Stem Cells Cardiac muscle differentiation in vivo is guided by sequential growth factor signals, including endoderm-derived diffusible factors, impinging on cardiogenic genes in the developing mesoderm. Previously, by RNA interference in AB2.2 mouse embryonic stem cells (mESCs), we identified the endodermal transcription factor Sox17 as essential for Mesp1 induction in primitive mesoderm and subsequent cardiac muscle differentiation. However, downstream effectors of Sox17 remained to be proven functionally. In this study, we used genome-wide profiling of Sox17-dependent genes in AB2.2 cells, RNA interference, chromatin immunoprecipitation, and luciferase reporter genes to dissect this pathway. Sox17 was required not only for Hhex (a second endodermal transcription factor) but also for Cer1, a growth factor inhibitor from endoderm that, like Hhex, controls mesoderm patterning in Xenopus toward a cardiac fate. Suppressing Hhex or Cer1 blocked cardiac myogenesis, although at a later stage than induction of Mesp1/2. Hhex was required but not sufficient for Cer1 expression. Over-expression of Sox17 induced endogenous Cer1 and sequence-specific transcription of a Cer1 reporter gene. Forced expression of Cer1 was sufficient to rescue cardiac differentiation in Hhex-deficient cells. Thus, Hhex and Cer1 are indispensable components of the Sox17 pathway for cardiopoiesis in mESCs, acting at a stage downstream from Mesp1/2. Stem Cells 2014;32:1515–1526 BlackWell Publishing Ltd 2014-06 2014-05-23 /pmc/articles/PMC4260090/ /pubmed/24585688 http://dx.doi.org/10.1002/stem.1695 Text en © 2014 AlphaMed Press
spellingShingle Embryonic Stem Cells/Induced Pluripotent Stem Cells
Liu, Yu
Kaneda, Ruri
Leja, Thomas W
Subkhankulova, Tatiana
Tolmachov, Oleg
Minchiotti, Gabriella
Schwartz, Robert J
Barahona, Mauricio
Schneider, Michael D
Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title_full Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title_fullStr Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title_full_unstemmed Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title_short Hhex and Cer1 Mediate the Sox17 Pathway for Cardiac Mesoderm Formation in Embryonic Stem Cells
title_sort hhex and cer1 mediate the sox17 pathway for cardiac mesoderm formation in embryonic stem cells
topic Embryonic Stem Cells/Induced Pluripotent Stem Cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4260090/
https://www.ncbi.nlm.nih.gov/pubmed/24585688
http://dx.doi.org/10.1002/stem.1695
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