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1.
Elife ; 122023 04 03.
Article in English | MEDLINE | ID: mdl-37010886

ABSTRACT

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 R-loops, even in the absence of cohesin. Our results place SA1 on chromatin upstream of the cohesin ring 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.


Subject(s)
R-Loop Structures , RNA , RNA/metabolism , Chromosomal Proteins, Non-Histone/metabolism , Cell Cycle Proteins/metabolism , Chromatin , CCCTC-Binding Factor/metabolism , Cohesins
2.
Nucleic Acids Res ; 50(8): 4557-4573, 2022 05 06.
Article in English | MEDLINE | ID: mdl-35438764

ABSTRACT

Lineage-determining transcription factors (LD-TFs) drive the differentiation of progenitor cells into a specific lineage. In CD4+ T cells, T-bet dictates differentiation of the TH1 lineage, whereas GATA3 drives differentiation of the alternative TH2 lineage. However, LD-TFs, including T-bet and GATA3, are frequently co-expressed but how this affects LD-TF function is not known. By expressing T-bet and GATA3 separately or together in mouse T cells, we show that T-bet sequesters GATA3 at its target sites, thereby removing GATA3 from TH2 genes. This redistribution of GATA3 is independent of GATA3 DNA binding activity and is instead mediated by the T-bet DNA binding domain, which interacts with the GATA3 DNA binding domain and changes GATA3's sequence binding preference. This mechanism allows T-bet to drive the TH1 gene expression program in the presence of GATA3. We propose that redistribution of one LD-TF by another may be a common mechanism that could explain how specific cell fate choices can be made even in the presence of other transcription factors driving alternative differentiation pathways.


Subject(s)
GATA3 Transcription Factor , T-Box Domain Proteins/metabolism , Th2 Cells , Animals , Cell Lineage , DNA/metabolism , GATA3 Transcription Factor/genetics , GATA3 Transcription Factor/metabolism , Gene Expression , Mice , T-Box Domain Proteins/genetics , Th2 Cells/cytology , Th2 Cells/metabolism
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