Epigenetic priming by Dppa2 and 4 in pluripotency facilitates multi-lineage commitment

Publication date

2020-08

Authors

Eckersley-Maslin, Mélanie A
Parry, Aled
Blotenburg, Marloes
Krueger, Christel
Ito, Yoko
Franklin, Valar Nila Roamio
Narita, Masashi
D'Santos, Clive S
Reik, Wolf

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Advisors

Supervisors

Document Type

Article

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taverne

Abstract

How the epigenetic landscape is established in development is still being elucidated. Here, we uncover developmental pluripotency associated 2 and 4 (DPPA2/4) as epigenetic priming factors that establish a permissive epigenetic landscape at a subset of developmentally important bivalent promoters characterized by low expression and poised RNA-polymerase. Differentiation assays reveal that Dppa2/4 double knockout mouse embryonic stem cells fail to exit pluripotency and differentiate efficiently. DPPA2/4 bind both H3K4me3-marked and bivalent gene promoters and associate with COMPASS- and Polycomb-bound chromatin. Comparing knockout and inducible knockdown systems, we find that acute depletion of DPPA2/4 results in rapid loss of H3K4me3 from key bivalent genes, while H3K27me3 is initially more stable but lost following extended culture. Consequently, upon DPPA2/4 depletion, these promoters gain DNA methylation and are unable to be activated upon differentiation. Our findings uncover a novel epigenetic priming mechanism at developmental promoters, poising them for future lineage-specific activation.

Keywords

Animals, Cell Differentiation, Cell Line, Chromatin/genetics, DNA Methylation, Dipeptidyl Peptidase 4/genetics, Epigenesis, Genetic, Gene Expression Regulation, Developmental, Gene Knockout Techniques, Histones/genetics, Mice, Mouse Embryonic Stem Cells/cytology, Transcription Factors/genetics, Taverne, Molecular Biology, Structural Biology, Research Support, Non-U.S. Gov't, Journal Article

Citation

Eckersley-Maslin, M A, Parry, A, Blotenburg, M, Krueger, C, Ito, Y, Franklin, V N R, Narita, M, D'Santos, C S & Reik, W 2020, 'Epigenetic priming by Dppa2 and 4 in pluripotency facilitates multi-lineage commitment', Nature structural & molecular biology, vol. 27, no. 8, pp. 696-705. https://doi.org/10.1038/s41594-020-0443-3