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Methylome profiling of SetDB1-deficient ESCs reveals coordinated epigenetic cross-talk during pluripotency.

Nick G P Bovee ,
Ehsan Habibi ,
Zicong Liu ,
Stefan H A Hoogland ,
Siebren Frölich ,
Daniëlle Diepenbroek ,
Kim C M Bosman ,
Julia Arand ,
Irina A Maksakova ,
Anouk Klein Kranenbarg ,
Jörn Walter ,
Arie B Brinkman ,
Klaas W Mulder ,
Joop H Jansen ,
Michiel Vermeulen ,
Matthew Lorincz ,
Hendrik G Stunnenberg ,
Hendrik Marks

Abstract

SetDB1 is best known for catalyzing H3K9me3, but it also influences H3K27me3 deposition, CTCF-binding, and DNA methylation (DNAme). Given the interplay between DNAme and the other epigenetic features, we profiled DNAme following Setdb1 knockout (KO) in ground-state and serum-grown mouse embryonic stem cells (ESCs) to illuminate DNAme-dependent and -independent functions of SetDB1. Time-course whole-genome bisulfite sequencing of serum-grown ESCs shows that nearly half of SetDB1 binding sites are enriched with DNAme and H3K9me3, primarily at retrotransposons. Upon Setdb1 KO, both H3K9me3 and DNAme are reduced, with DNAme rapidly removed at many sites by TET enzymes. Some retrotransposons, primarily IAPs, are TET-resistant and lose DNAme slowly via passive dilution. Notably, SetDB1-mediated regulation of H3K27me3, CTCF-binding, and SMAD3 are uncoupled from the DNAme-H3K9me3 axis, and from each other. AlphaFold modeling and co-immunoprecipitation mass spectrometry suggest this uncoupling involves competitive binding to distinct SetDB1 protein domains, highlighting the complex coordination underlying SetDB1 functions.

More about this publication

Stem cell reports

Pages 103075
Publication date 03-09-2026

Full text links

Publisher website (DOI) 10.1016/j.stemcr.2026.103075
Europe PubMed Central 42692011
Pubmed 42692011

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