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Cammas, F.

Publications and source records attributed to Cammas, F..

2 recordsLinked to original sources

Isotype specific loss of HP1α but not of HP1β uncovers genomic regions that behave as HP1α-dependent common fragile sites

HP1 proteins are highly evolutionarily conserved chromatin-associated factors known to play essential roles in genome stability and nuclear organization. In mammals, three HP1 isoforms, HP1, HP1{beta} and HP1{gamma}, have been described, but their individual functions remain incompletely characterized. Here, we inactivated HP1 or HP1{beta} in different cell lines and quantified chromosomal breaks on metaphase spreads in the presence or absence of aphidicolin-induced replication stress. Loss of HP1, but not of HP1{beta}, led to a significant increase of chromosomal breaks on chromosome arms and within pericentromeric heterochromatin under these conditions. Mechanistically, loss of HP1 was associated with a reduction in replication fork velocity, suggesting that HP1 deficiency induces a replication stress that sensitizes specific genomic loci to replication perturbation. Consistent with this, HP1 loss was associated with a moderate but consistent increase in {gamma}H2AX and 53BP1 foci, an increased occurrence of DNA synthesis during mitosis, and enhanced recruitment of FANCD2, all recognized as hallmarks of common fragile site (CFS) expression. In addition, rescue experiments using a chromodomain mutant HP1 (V22M) unable to bind H3K9me3 indicated that HP1 protective function over these specific foci did not require its interaction with this histone mark. Altogether, these data indicate that, independently of its binding to H3K9me3, HP1 stabilizes specific genomic regions that behave as HP1-dependent fragile sites, at least in part by regulating replication fork progression, limiting mitotic DNA synthesis possibly by competing with FANCD2 for chromatin access at these regions.

cell biology↗

TRIM28 preserves ovarian identity by stabilising lineage-specific transcription factor hubs

Maintenance of ovarian cell identity is required throughout life to prevent the activation of the testicular program, but the epigenetic mechanisms underlying this process remain poorly understood. Although TRIM28 is required to prevent granulosa-to-Sertoli transdifferentiation, it can act both as a regulator of H3K9me3-dependent heterochromatin and as a transcriptional activator through its E3 SUMOligase activity. Here, we combined CUT&RUN, ATAC-seq and RNA-seq to define the respective contributions of these activities to maintain ovarian cell identity. Strikingly, only a small fraction of TRIM28-bound regions was associated with H3K9me3. Although Trim28 deletion induced focal H3K9me3 loss, it had limited transcriptional consequences and primarily affected repetitive elements rather than regions controlling testis-determining genes. In contrast, Trim28 loss led to reductions in chromatin accessibility and H3K27ac at regions enriched for ovarian transcription factor (TF) motifs FOXL2, NR5A2, ESR2 and RUNX1. Moreover, TRIM28 was frequently co-localized with these TFs on chromatin, and the accessibility and the SUMOylation at these co-bound regions were reduced by Trim28 deletion. Together, our findings identify TRIM28 as a central organizer of ovarian TF hubs whose predominant function is to preserve granulosa cell identity through stabilization of lineage-specific TFs rather than H3K9me3-dependent heterochromatin. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=75 SRC="FIGDIR/small/739817v2_ufig1.gif" ALT="Figure 1"> View larger version (19K): org.highwire.dtl.DTLVardef@b39856org.highwire.dtl.DTLVardef@d65435org.highwire.dtl.DTLVardef@132974borg.highwire.dtl.DTLVardef@6ad72f_HPS_FORMAT_FIGEXP M_FIG C_FIG

genomics↗