Cargando…

Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia

Mouse embryonic stem cells (mESCs) are expanded and maintained pluripotent in vitro in the presence of leukemia inhibitory factor (LIF), an IL6 cytokine family member which displays pleiotropic functions, depending on both cell maturity and cell type. LIF withdrawal leads to heterogeneous differenti...

Descripción completa

Detalles Bibliográficos
Autores principales: Hammoud, Aya Abou, Kirstein, Nina, Mournetas, Virginie, Darracq, Anais, Broc, Sabine, Blanchard, Camille, Zeineddine, Dana, Mortada, Mohamad, Boeuf, Helene
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4701481/
https://www.ncbi.nlm.nih.gov/pubmed/26731538
http://dx.doi.org/10.1371/journal.pone.0146281
_version_ 1782408495552790528
author Hammoud, Aya Abou
Kirstein, Nina
Mournetas, Virginie
Darracq, Anais
Broc, Sabine
Blanchard, Camille
Zeineddine, Dana
Mortada, Mohamad
Boeuf, Helene
author_facet Hammoud, Aya Abou
Kirstein, Nina
Mournetas, Virginie
Darracq, Anais
Broc, Sabine
Blanchard, Camille
Zeineddine, Dana
Mortada, Mohamad
Boeuf, Helene
author_sort Hammoud, Aya Abou
collection PubMed
description Mouse embryonic stem cells (mESCs) are expanded and maintained pluripotent in vitro in the presence of leukemia inhibitory factor (LIF), an IL6 cytokine family member which displays pleiotropic functions, depending on both cell maturity and cell type. LIF withdrawal leads to heterogeneous differentiation of mESCs with a proportion of the differentiated cells apoptosising. During LIF withdrawal, cells sequentially enter a reversible and irreversible phase of differentiation during which LIF addition induces different effects. However the regulators and effectors of LIF–mediated reprogramming are poorly understood. By employing a LIF-dependent ‘plasticity’ test, that we set up, we show that Klf5, but not JunB is a key LIF effector. Furthermore PI3K signaling, required for the maintenance of mESC pluripotency, has no effect on mESC plasticity while displaying a major role in committed cells by stimulating expression of the mesodermal marker Brachyury at the expense of endoderm and neuroectoderm lineage markers. We also show that the MMP1 metalloproteinase, which can replace LIF for maintenance of pluripotency, mimics LIF in the plasticity window, but less efficiently. Finally, we demonstrate that mESCs maintain plasticity and pluripotency potentials in vitro under hypoxic/physioxic growth conditions at 3% O(2) despite lower levels of Pluri and Master gene expression in comparison to 20% O(2).
format Online
Article
Text
id pubmed-4701481
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-47014812016-01-15 Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia Hammoud, Aya Abou Kirstein, Nina Mournetas, Virginie Darracq, Anais Broc, Sabine Blanchard, Camille Zeineddine, Dana Mortada, Mohamad Boeuf, Helene PLoS One Research Article Mouse embryonic stem cells (mESCs) are expanded and maintained pluripotent in vitro in the presence of leukemia inhibitory factor (LIF), an IL6 cytokine family member which displays pleiotropic functions, depending on both cell maturity and cell type. LIF withdrawal leads to heterogeneous differentiation of mESCs with a proportion of the differentiated cells apoptosising. During LIF withdrawal, cells sequentially enter a reversible and irreversible phase of differentiation during which LIF addition induces different effects. However the regulators and effectors of LIF–mediated reprogramming are poorly understood. By employing a LIF-dependent ‘plasticity’ test, that we set up, we show that Klf5, but not JunB is a key LIF effector. Furthermore PI3K signaling, required for the maintenance of mESC pluripotency, has no effect on mESC plasticity while displaying a major role in committed cells by stimulating expression of the mesodermal marker Brachyury at the expense of endoderm and neuroectoderm lineage markers. We also show that the MMP1 metalloproteinase, which can replace LIF for maintenance of pluripotency, mimics LIF in the plasticity window, but less efficiently. Finally, we demonstrate that mESCs maintain plasticity and pluripotency potentials in vitro under hypoxic/physioxic growth conditions at 3% O(2) despite lower levels of Pluri and Master gene expression in comparison to 20% O(2). Public Library of Science 2016-01-05 /pmc/articles/PMC4701481/ /pubmed/26731538 http://dx.doi.org/10.1371/journal.pone.0146281 Text en © 2016 Hammoud 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited
spellingShingle Research Article
Hammoud, Aya Abou
Kirstein, Nina
Mournetas, Virginie
Darracq, Anais
Broc, Sabine
Blanchard, Camille
Zeineddine, Dana
Mortada, Mohamad
Boeuf, Helene
Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title_full Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title_fullStr Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title_full_unstemmed Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title_short Murine Embryonic Stem Cell Plasticity Is Regulated through Klf5 and Maintained by Metalloproteinase MMP1 and Hypoxia
title_sort murine embryonic stem cell plasticity is regulated through klf5 and maintained by metalloproteinase mmp1 and hypoxia
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4701481/
https://www.ncbi.nlm.nih.gov/pubmed/26731538
http://dx.doi.org/10.1371/journal.pone.0146281
work_keys_str_mv AT hammoudayaabou murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT kirsteinnina murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT mournetasvirginie murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT darracqanais murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT brocsabine murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT blanchardcamille murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT zeineddinedana murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT mortadamohamad murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia
AT boeufhelene murineembryonicstemcellplasticityisregulatedthroughklf5andmaintainedbymetalloproteinasemmp1andhypoxia