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Soni, K.

Publications and source records attributed to Soni, K..

2 recordsLinked to original sources

Structural basis for specific RNA recognition by the alternative splicing factor RBM5

The RNA-binding motif protein RBM5 belongs to a family of multi-domain RNA binding proteins that are implicated in cancer and regulate alternative splicing of genes important for apoptosis and cell proliferation and have been implicated in cancer. RBM5 harbors structural modules for RNA recognition, such as RRM domains and a Zn finger, and protein-protein interactions such as an OCRE domain. Here, we characterize binding of the RBM5 RRM1-ZnF1-RRM2 domains to cis-regulatory RNA elements. A structure of the RRM1-ZnF1 region in complex with RNA shows how the tandem domains cooperate to sandwich target RNA and specifically recognize a GG dinucleotide in a non-canonical fashion. While the RRM1-ZnF1 domains act as a single structural module, RRM2 is connected by a flexible linker and tumbles independently. However, all three domains participate in RNA binding and adopt a closed architecture upon RNA binding. Our data highlight how cooperativity and conformational modularity of multiple RNA binding domains enable the recognition of distinct RNA motifs, thereby contributing to the regulation of alternative splicing. Remarkably, we observe surprising differences in coupling of the RNA binding domains between the closely related homologs RBM5 and RBM10. HighlightsO_LIMultiple RNA binding domains enable differential recognition of distinct RNA motifs to regulate alternative splicing C_LIO_LIThe RRM1-ZnF1 domains of RBM5 mediate specific recognition of cis regulatory RNA motifs to modulate alternative splicing C_LIO_LIRRM1-ZnF1 sandwich the target RNA for non-canonical recognition of a GG dinucleotide C_LIO_LIRRM1-ZnF1-RRM2 bind cooperatively to contiguous cis-regulatory motifs in caspase-2 and NUMB pre-mRNAs C_LI

biochemistry↗

Mechanistic insights into RNA surveillance by the canonical poly(A) polymerase Pla1 of the MTREC complex.

The S. pombe orthologue of the human PAXT complex, Mtl1-Red1 Core (MTREC), is an eleven-subunit complex which targets cryptic unstable transcripts (CUTs) to the nuclear RNA exosome for degradation. It encompasses the canonical poly(A) polymerase Pla1, responsible for polyadenylation of nascent RNA transcripts as part of the cleavage and polyadenylation factor (CPF/CPSF). In this study we identified and characterised the interaction between Pla1 and the MTREC complex core component Red1 and analysed the functional relevance of this interaction in vivo. Our crystal structure of the Pla1-Red1 complex showed that a 58-residue fragment in Red1 binds to the RNA recognition motif domain of Pla1 and tethers it to the MTREC complex. Structure-based Pla1-Red1 interaction mutations showed that Pla1, as part of MTREC complex, hyper-adenylates CUTs for their efficient degradation. Interestingly, the Red1-Pla1 interaction was also required for the efficient assembly of the fission yeast facultative heterochromatic islands. Together, our data suggest a complex interplay between the RNA surveillance and 3-end processing machineries.

molecular biology↗