C/EBPalpha activates pre-existing and de novo macrophage enhancers during induced pre-B cell transdifferentiation and myelopoiesis

Transcription-factor-induced somatic cell conversions are highly relevant for both basic and clinical research yet their mechanism is not fully understood and it is unclear whether they reflect normal differentiation processes. Here we show that during pre-B-cell-to-macrophage transdifferentiation,...

ver descrição completa

Detalhes bibliográficos
Autores: van Oevelen, Chris, Collombet, Samuel, Vicent, Guillermo Pablo, Hoogenkamp, Maarten, Lepoivre, Cyrille, Badeaux, Aimee, Bussmann, Lars, Sardina, Jose Luis, Thieffry, Denis, Beato, Miguel, Shi, Yang, Bonifer, Constanze, Graf, T. (Thomas)
Tipo de documento: artigo
Estado:Versão publicada
Data de publicação:2015
País:España
Recursos:Universitat Pompeu Fabra
Repositório:Repositorio Digital de la UPF
OAI Identifier:oai:repositori.upf.edu:10230/25184
Acesso em linha:http://hdl.handle.net/10230/25184
http://dx.doi.org/10.1016/j.stemcr.2015.06.007
Access Level:Acceso aberto
Palavra-chave:Cèl·lules B
Cèl·lules mare embrionàries
Descrição
Resumo:Transcription-factor-induced somatic cell conversions are highly relevant for both basic and clinical research yet their mechanism is not fully understood and it is unclear whether they reflect normal differentiation processes. Here we show that during pre-B-cell-to-macrophage transdifferentiation, C/EBPα binds to two types of myeloid enhancers in B cells: pre-existing enhancers that are bound by PU.1, providing a platform for incoming C/EBPα; and de novo enhancers that are targeted by C/EBPα, acting as a pioneer factor for subsequent binding by PU.1. The order of factor binding dictates the upregulation kinetics of nearby genes. Pre-existing enhancers are broadly active throughout the hematopoietic lineage tree, including B cells. In contrast, de novo enhancers are silent in most cell types except in myeloid cells where they become activated by C/EBP factors. Our data suggest that C/EBPα recapitulates physiological developmental processes by short-circuiting two macrophage enhancer pathways in pre-B cells.