RBMX enables productive RNA processing of ultra-long exons important for genome stability
Luzzi, S.; Hysenaj, G.; Siachisumo, C.; Cheung, K.; Gazzara, M. R.; James, K.; Dalgliesh, C.; Kheirollahi Chadegani, M.; Ehrmann, I.; Smith, G. R.; Cockell, S. J.; Munkley, J.; Barash, Y.; Elliott, D. J.
Show abstract
Previously we showed that the germline-specific RNA binding protein RBMXL2 is essential for male meiosis where it represses cryptic splicing patterns (1). Here we find that its ubiquitously expressed paralog RBMX helps underpin human genome stability by preventing non-productive splicing. In particular, RBMX blocks selection of aberrant splice and polyadenylation sites within some ultra-long exons that would interfere with genes needed for normal replication fork activity. Target exons include within the ETAA1 (Ewings Tumour Associated 1) gene, where RBMX collaborates with its interaction partner Tra2{beta} to enable full-length exon inclusion by blocking selection of an aberrant 3 splice site. Our data reveal a novel group of RNA processing targets potently repressed by RBMX, and help explain why RBMX is associated with gene expression networks in cancer, replication and sensitivity to genotoxic drugs.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Exon junction complex-associated multi-adapter RNPS1 nucleates splicing regulatory complexes to maintain transcriptome surveillance 97%
- Human NOP2/NSUN1 Regulates Ribosome Biogenesis Through Non-Catalytic Complex Formation with Box C/D snoRNPs. 97%
- CASC3 promotes transcriptome-wide activation of nonsense-mediated decay by the exon junction complex 97%
Similar papers in this journal
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.