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Jenuwein, T.

Publications and source records attributed to Jenuwein, T..

2 recordsLinked to original sources

MeCP2 binds to methylated DNA independently of phase separation and heterochromatin organisation

Correlative evidence has suggested that DNA methylation promotes the formation of transcriptionally silent heterochromatin. Accordingly, the methyl-CpG binding domain protein MeCP2 is often portrayed as a constituent of heterochromatin. This interpretation has been reinforced by the use of mouse cells as an experimental system for studying the mammalian epigenome, as heterochromatin, DNA methylation and MeCP2 colocalise in prominent foci. The findings presented here revise this view. We show that focal localisation of MeCP2 in mice is independent of heterochromatin, as DNA methylation-dependent MeCP2 foci persist even when the signature heterochromatin histone mark H3K9me3 is absent and heterochromatin protein HP1 is diffuse. Contrary to the proposal that MeCP2 forms condensates at mouse heterochromatic foci via liquid-liquid phase transition, the short methyl-CpG binding domain, which lacks the disordered domains thought to be required for condensation, is sufficient to target foci in mouse cells. Importantly, we find that the formation of MeCP2 foci in mice is highly atypical, as they are indetectable in 14 out of 16 other mammalian species, including humans. Notably, MeCP2 foci are absent in Mus spretus which can interbreed with Mus musculus but lacks its highly methylated pericentric satellite DNA repeats. We conclude that MeCP2 has no intrinsic tendency to form nuclear condensates and its localisation is independent of heterochromatin formation. Instead, the distribution of MeCP2 in the nucleus is primarily determined by global DNA methylation patterns and is typically euchromatic.

cell biology↗

Loss of H3K9 tri-methylation alters chromosome compaction and transcription factor retention during mitosis

Recent studies have shown that repressive chromatin machinery, including DNA methyltransferases (DNMTs) and Polycomb Repressor Complexes (PRCs), bind to chromosomes throughout mitosis and their depletion results in increased chromosome size. Here we show that enzymes that catalyse H3K9 methylation, such as Suv39h1, Suv39h2, G9a and Glp, are also retained on mitotic chromosomes. Surprisingly however, mutants lacking H3K9me3 have unusually small and compact mitotic chromosomes that are associated with increased H3S10ph and H3K27me3 levels. Chromosome size and centromere compaction in these mutants were rescued by providing exogenous Suv39h1, or inhibiting Ezh2 activity. Quantitative proteomic comparisons of native mitotic chromosomes isolated from wildtype versus Suv39h1/Suv39h2 double-null ESCs revealed that H3K9me3 was essential for the efficient retention of bookmarking factors such as Esrrb. These results highlight an unexpected role for repressive heterochromatin domains in preserving transcription factor binding through mitosis, and underscore the importance of H3K9me3 for sustaining chromosome architecture and epigenetic memory during cell division.

molecular biology↗