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Biology subjects

HADJUR, S.

Publications and source records attributed to HADJUR, S..

2 recordsLinked to original sources

STAG proteins promote cohesin ring loading at R-loops.

Most studies of cohesin function consider the Stromalin Antigen (STAG/SA) proteins as core complex members given their ubiquitous interaction with the cohesin ring. Here, we provide functional data to support the notion that the SA subunit is not a mere passenger in this structure, but instead plays a key role in the localization of cohesin to diverse biological processes and promotes loading of the complex at these sites. We show that in cells acutely depleted for RAD21, SA proteins remain bound to chromatin, cluster in 3D and interact with CTCF, as well as with a wide range of RNA binding proteins involved in multiple RNA processing mechanisms. Accordingly, SA proteins interact with RNA and are localised to R-loops where they contribute to R-loop regulation. Our results place SA1 within R-loop domains upstream of the cohesin complex and reveal a role for SA1 in cohesin loading which is independent of NIPBL, the canonical cohesin loader. We propose that SA1 takes advantage of structural R-loop platforms to link cohesin loading and chromatin structure with diverse functions. Since SA proteins are pan-cancer targets, and R-loops play an increasingly prevalent role in cancer biology, our results have important implications for the mechanistic understanding of SA proteins in cancer and disease.

cell biology

The cohesin regulator Stag1 promotes cell plasticity through heterochromatin regulation.

Several studies have shown a role for Stag proteins in cell identity. Our understanding of how Stag proteins contribute to cell identity have largely been focused on its roles in chromosome topology as part of the cohesin complex and the impact on protein-coding gene expression. Furthermore, several Stag paralogs exist in mammalian cells with non-reciprocal chromosome structure and cohesion functions. Why cells have so many Stag proteins and what specific functions each Stag protein performs to support a given cell state are poorly understood. Here we reveal that Stag1 is the dominant paralog in mouse embryonic stem cells (mESC) and is required for pluripotency. Through the discovery of diverse, naturally occurring Stag1 isoforms in mESCs, we shed new light not only on the unique ends of Stag1 but also the critical role that their levels play in stem cell identity. Furthermore, we revel a new role for Stag1, and specifically its unique N-terminal end, in regulating nucleolar integrity and safeguarding mESCs from totipotency. Stag1 is localised to repressive perinucleolar regions, bound at repeats and interacts with Nucleolin and TRIM28. Loss of the Stag1 N-terminus, leads to decreased LINE-1 and rRNA expression and disruption of nucleolar structure and function which consequently leads to activation of the two-cell-like (2C-LC)-specific transcription factor DUX and conversion of pluripotent mESCs to totipotent 2C-LCs. Our results move beyond protein-coding gene regulation via chromatin loops into a new role for Stag1 in repeat regulation and nucleolar structure, and offer fresh perspectives on how Stag proteins contribute to cell identity and disease.

cell biology