Epigenetic signatures associated with different levels of differentiation potential in human stem cells

BACKGROUND: The therapeutic use of multipotent stem cells depends on their differentiation potential, which has been shown to be variable for different populations. These differences are likely to be the result of key changes in their epigenetic profiles. METHODOLOGY/PRINCIPAL FINDINGS: to address t...

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Detalhes bibliográficos
Autores: Aranda, Pablo, Agirre, Xabier, Ballestar Tarín, Esteban, Andreu, Enrique J., Román-Gómez, José, Prieto, Inés, Martín-Subero, José Ignacio, Cruz Cigudosa, Juan, Siebert, Reiner, Esteller, Manel, 1968-, Prosper, Felipe
Tipo de documento: artigo
Estado:Versão publicada
Data de publicação:2009
País:España
Recursos:Universidad de Barcelona
Repositório:Dipòsit Digital de la UB
OAI Identifier:oai:diposit.ub.edu:2445/69601
Acesso em linha:https://hdl.handle.net/2445/69601
Access Level:Acceso aberto
Palavra-chave:Epigènesi
Cèl·lules mare
Diferenciació cel·lular
Transcripció genètica
Epigenesis
Stem cells
Cell diferentiation
Genetic transcription
Descrição
Resumo:BACKGROUND: The therapeutic use of multipotent stem cells depends on their differentiation potential, which has been shown to be variable for different populations. These differences are likely to be the result of key changes in their epigenetic profiles. METHODOLOGY/PRINCIPAL FINDINGS: to address this issue, we have investigated the levels of epigenetic regulation in well characterized populations of pluripotent embryonic stem cells (ESC) and multipotent adult stem cells (ASC) at the trancriptome, methylome, histone modification and microRNA levels. Differences in gene expression profiles allowed classification of stem cells into three separate populations including ESC, multipotent adult progenitor cells (MAPC) and mesenchymal stromal cells (MSC). The analysis of the PcG repressive marks, histone modifications and gene promoter methylation of differentiation and pluripotency genes demonstrated that stem cell populations with a wider differentiation potential (ESC and MAPC) showed stronger representation of epigenetic repressive marks in differentiation genes and that this epigenetic signature was progressively lost with restriction of stem cell potential. Our analysis of microRNA established specific microRNA signatures suggesting specific microRNAs involved in regulation of pluripotent and differentiation genes. CONCLUSIONS/SIGNIFICANCE: Our study leads us to propose a model where the level of epigenetic regulation, as a combination of DNA methylation and histone modification marks, at differentiation genes defines degrees of differentiation potential from progenitor and multipotent stem cells to pluripotent stem cells.