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Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity

Generation of induced pluripotent stem cells from specialized cell types provides an excellent model to study how cells maintain their stability, and how they can change identity, especially in the context of disease. Previous studies have shown that chromatin safeguards cell identity by acting as a...

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Autores principales: Valakos, Dimitrios, Klagkou, Eleftheria, Kokkalis, Antonis, Polyzos, Alexandros, Kyrilis, Fotis L., Banos, Aggelos, Vatsellas, Giannis, Pliatska, Maria, Ford, Ethan, Stravopodis, Dimitrios J., Thanos, Dimitris
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10335705/
https://www.ncbi.nlm.nih.gov/pubmed/37432970
http://dx.doi.org/10.1371/journal.pone.0288005
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author Valakos, Dimitrios
Klagkou, Eleftheria
Kokkalis, Antonis
Polyzos, Alexandros
Kyrilis, Fotis L.
Banos, Aggelos
Vatsellas, Giannis
Pliatska, Maria
Ford, Ethan
Stravopodis, Dimitrios J.
Thanos, Dimitris
author_facet Valakos, Dimitrios
Klagkou, Eleftheria
Kokkalis, Antonis
Polyzos, Alexandros
Kyrilis, Fotis L.
Banos, Aggelos
Vatsellas, Giannis
Pliatska, Maria
Ford, Ethan
Stravopodis, Dimitrios J.
Thanos, Dimitris
author_sort Valakos, Dimitrios
collection PubMed
description Generation of induced pluripotent stem cells from specialized cell types provides an excellent model to study how cells maintain their stability, and how they can change identity, especially in the context of disease. Previous studies have shown that chromatin safeguards cell identity by acting as a barrier to reprogramming. We investigated mechanisms by which the histone macroH2A variants inhibit reprogramming and discovered that they work as gate keepers of the mesenchymal cell state by blocking epithelial transition, a step required for reprogramming of mouse fibroblasts. More specifically, we found that individual macroH2A variants regulate the expression of defined sets of genes, whose overall function is to stabilize the mesenchymal gene expression program, thus resisting reprogramming. We identified a novel gene network (MSCN, mesenchymal network) composed of 63 macroH2A-regulated genes related to extracellular matrix, cell membrane, signaling and the transcriptional regulators Id2 and Snai2, all of which function as guardians of the mesenchymal phenotype. ChIP-seq and KD experiments revealed a macroH2A variant-specific combinatorial targeting of the genes reconstructing the MSCN, thus generating robustness in gene expression programs to resist cellular reprogramming.
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spelling pubmed-103357052023-07-12 Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity Valakos, Dimitrios Klagkou, Eleftheria Kokkalis, Antonis Polyzos, Alexandros Kyrilis, Fotis L. Banos, Aggelos Vatsellas, Giannis Pliatska, Maria Ford, Ethan Stravopodis, Dimitrios J. Thanos, Dimitris PLoS One Research Article Generation of induced pluripotent stem cells from specialized cell types provides an excellent model to study how cells maintain their stability, and how they can change identity, especially in the context of disease. Previous studies have shown that chromatin safeguards cell identity by acting as a barrier to reprogramming. We investigated mechanisms by which the histone macroH2A variants inhibit reprogramming and discovered that they work as gate keepers of the mesenchymal cell state by blocking epithelial transition, a step required for reprogramming of mouse fibroblasts. More specifically, we found that individual macroH2A variants regulate the expression of defined sets of genes, whose overall function is to stabilize the mesenchymal gene expression program, thus resisting reprogramming. We identified a novel gene network (MSCN, mesenchymal network) composed of 63 macroH2A-regulated genes related to extracellular matrix, cell membrane, signaling and the transcriptional regulators Id2 and Snai2, all of which function as guardians of the mesenchymal phenotype. ChIP-seq and KD experiments revealed a macroH2A variant-specific combinatorial targeting of the genes reconstructing the MSCN, thus generating robustness in gene expression programs to resist cellular reprogramming. Public Library of Science 2023-07-11 /pmc/articles/PMC10335705/ /pubmed/37432970 http://dx.doi.org/10.1371/journal.pone.0288005 Text en © 2023 Valakos et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://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
Valakos, Dimitrios
Klagkou, Eleftheria
Kokkalis, Antonis
Polyzos, Alexandros
Kyrilis, Fotis L.
Banos, Aggelos
Vatsellas, Giannis
Pliatska, Maria
Ford, Ethan
Stravopodis, Dimitrios J.
Thanos, Dimitris
Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title_full Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title_fullStr Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title_full_unstemmed Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title_short Combinatorial targeting of a specific EMT/MET network by macroH2A variants safeguards mesenchymal identity
title_sort combinatorial targeting of a specific emt/met network by macroh2a variants safeguards mesenchymal identity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10335705/
https://www.ncbi.nlm.nih.gov/pubmed/37432970
http://dx.doi.org/10.1371/journal.pone.0288005
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