OCT4 activates a Suv39h1-repressive antisense lncRNA to couple histone H3 Lysine 9 methylation to pluripotency

Author:

Bernard Laure D12,Dubois Agnès1,Heurtier Victor12,Fischer Véronique1,Gonzalez Inma1,Chervova Almira1,Tachtsidi Alexandra12,Gil Noa3,Owens Nick1,Bates Lawrence E4,Vandormael-Pournin Sandrine1,Silva José C R5ORCID,Ulitsky Igor3ORCID,Cohen-Tannoudji Michel1,Navarro Pablo1ORCID

Affiliation:

1. Institut Pasteur, Université Paris Cité, CNRS UMR3738, Epigenomics, Proliferation, and the Identity of Cells Unit, Department of Developmental and Stem Cell Biology , F-75015 Paris, France

2. Sorbonne Université, Collège doctoral , F- 75005  Paris, France

3. Department of Immunology and Regenerative Biology and Department of Molecular Neuroscience, Weizmann Institute of Science , Rehovot , Israel

4. MRC Human Genetics Unit, MRC Institute of Genetics and Cancer, University of Edinburgh , Edinburgh EH4 2XU, UK

5. Guangzhou Laboratory, Guangzhou International Bio Island , Guangzhou 510005 , Guangdong Province, China

Abstract

Abstract Histone H3 Lysine 9 (H3K9) methylation, a characteristic mark of heterochromatin, is progressively implemented during development to contribute to cell fate restriction as differentiation proceeds. Accordingly, in undifferentiated and pluripotent mouse Embryonic Stem (ES) cells the global levels of H3K9 methylation are rather low and increase only upon differentiation. How global H3K9 methylation levels are coupled with the loss of pluripotency remains largely unknown. Here, we identify SUV39H1, a major H3K9 di- and tri-methylase, as an indirect target of the pluripotency network of Transcription Factors (TFs). We find that pluripotency TFs, principally OCT4, activate the expression of Suv39h1as, an antisense long non-coding RNA to Suv39h1. In turn, Suv39h1as downregulates Suv39h1 transcription in cis via a mechanism involving the modulation of the chromatin status of the locus. The targeted deletion of the Suv39h1as promoter region triggers increased SUV39H1 expression and H3K9me2 and H3K9me3 levels, affecting all heterochromatic regions, particularly peri-centromeric major satellites and retrotransposons. This increase in heterochromatinization efficiency leads to accelerated and more efficient commitment into differentiation. We report, therefore, a simple genetic circuitry coupling the genetic control of pluripotency with the global efficiency of H3K9 methylation associated with a major cell fate restriction, the irreversible loss of pluripotency.

Funder

Ecole Normale Supérieure

Sorbonne Université

Labex Revive

Institut Pasteur

CNRS

Publisher

Oxford University Press (OUP)

Subject

Genetics

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