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DAXX safeguards heterochromatin formation in embryonic stem cells.
Canat, Antoine; Veillet, Adeline; Batrin, Renaud; Dubourg, Clara; Lhoumaud, Priscillia; Arnau-Romero, Pol; Greenberg, Maxim V C; Bonhomme, Frédéric; Arimondo, Paola B; Illingworth, Robert; Fabre, Emmanuelle; Therizols, Pierre.
Afiliação
  • Canat A; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
  • Veillet A; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
  • Batrin R; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
  • Dubourg C; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
  • Lhoumaud P; Université Paris Cité, CNRS, Institut Jacques Monod, F-75013 Paris, France.
  • Arnau-Romero P; Université Paris Cité, CNRS, Institut Jacques Monod, F-75013 Paris, France.
  • Greenberg MVC; Université Paris Cité, CNRS, Institut Jacques Monod, F-75013 Paris, France.
  • Bonhomme F; Institut Pasteur, Université Paris Cité, CNRS, Epigenetic Chemical Biology, UMR 3523, F-75724 Paris, France.
  • Arimondo PB; Institut Pasteur, Université Paris Cité, CNRS, Epigenetic Chemical Biology, UMR 3523, F-75724 Paris, France.
  • Illingworth R; Centre for Regenerative Medicine, Institute for Regeneration and Repair, The University of Edinburgh, Edinburgh BioQuarter, 5 Little France Drive, Edinburgh EH16 4UU, UK.
  • Fabre E; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
  • Therizols P; Université de Paris, Laboratoire Génomes, Biologie Cellulaire et Thérapeutiques, CNRS UMR7212, INSERM U944, Institut de Recherche St Louis, F-75010 Paris, France.
J Cell Sci ; 136(19)2023 10 01.
Article em En | MEDLINE | ID: mdl-37655670
ABSTRACT
Genomes comprise a large fraction of repetitive sequences folded into constitutive heterochromatin, which protect genome integrity and cell identity. De novo formation of heterochromatin during preimplantation development is an essential step for preserving the ground-state of pluripotency and the self-renewal capacity of embryonic stem cells (ESCs). However, the molecular mechanisms responsible for the remodeling of constitutive heterochromatin are largely unknown. Here, we identify that DAXX, an H3.3 chaperone essential for the maintenance of mouse ESCs in the ground state, accumulates in pericentromeric regions independently of DNA methylation. DAXX recruits PML and SETDB1 to promote the formation of heterochromatin, forming foci that are hallmarks of ground-state ESCs. In the absence of DAXX or PML, the three-dimensional (3D) architecture and physical properties of pericentric and peripheral heterochromatin are disrupted, resulting in de-repression of major satellite DNA, transposable elements and genes associated with the nuclear lamina. Using epigenome editing tools, we observe that H3.3, and specifically H3.3K9 modification, directly contribute to maintaining pericentromeric chromatin conformation. Altogether, our data reveal that DAXX is crucial for the maintenance and 3D organization of the heterochromatin compartment and protects ESC viability.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Heterocromatina / Histonas Limite: Animals Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Heterocromatina / Histonas Limite: Animals Idioma: En Ano de publicação: 2023 Tipo de documento: Article