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RACHEZ, C.

Publications and source records attributed to RACHEZ, C..

2 recordsLinked to original sources

Set mediates chromosome alignment and Cohesin cleavage independently of direct PP2A-B56-binding in oocyte meiosis

Set promotes cohesion removal in mitosis by evicting phosphorylated Histone H1 and counteracting Sgo1. In addition, Set promotes chromosome alignment by counteracting Aurora B activation. The underlying molecular mechanisms through which Set performs these activities remain insufficiently characterized, but roles of Set as a Histone chaperone and PP2A inhibitor have been proposed. Building on our previous observations that Set promotes pericentromeric Cohesin removal in oocyte meiosis II, we generated an oocyte-specific conditional knock-out of Set to address its functions in meiosis. Similar to mitosis, Set depletion caused chromosome alignment and cohesion defects. We found that Set is required for accurate error correction by localizing Aurora B/C, and for efficient cleavage of the meiosis-specific Cohesin subunit Rec8 by Separase. Paired chromosomes and sister chromatids were often incompletely separated, likely a primary cause of missegregation. Set performed both its roles in a Sgo2-dependent manner, but, unexpectedly, independently of interaction with PP2A-B56. In line with a role of Set as a Histone chaperone, accumulation of phosphorylated Histone H1 in Set knock-out oocytes occurs concomitantly with reduction of oocyte-specific H1foo on chromosome arms, indicating that Set is required to create the optimal chromatin environment for efficient Rec8 cleavage by Separase in meiosis.

cell biology↗

Nuclear RNA exosome targeting onto chromatin loci in the degradation of unstable transcripts affects transcriptional programs in liver cells.

HP1, a hallmark of pericentromeric heterochromatin, is a chromatin-bound regulator of co-transcriptional processes including alternative splicing, but its role in RNA degradation remains unexplored. Here, we uncover a direct interaction between HP1 and the RNA exosome, a major RNA decay complex. In mouse embryonic liver cells, inactivation of all three HP1 isoforms led to accumulation of retrotransposon-derived RNAs and stabilization of enhancer RNAs. These changes coincided with increased activity at a subset of liver enhancers particularly sensitive to reduced exosome activity, many of which regulate genes encoding extracellular matrix components such as Col6a1 and Col6a2. Stratifying hepatocellular carcinoma samples by HP1 expression further revealed that tumors with low HP1 were marked by reduced RNA degradation, and increased expression of a similar subset of genes encoding extracellular matrix components and possibly contributing to tumor stiffness. These results suggest that HP1s impact on RNA turnover contributes to its function in cancer biology.

molecular biology↗