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Biology subjects

Song, K. S.

Publications and source records attributed to Song, K. S..

2 recordsLinked to original sources

A starvation-remodeled pre-mRNA structure controls U1 recruitment and nutrient-stress adaptation in yeast

Recognition of 5' splice sites by the U1 small nuclear ribonucleoprotein commits pre-mRNAs to splicing, yet splice-site complementarity alone cannot predict productive U1 engagement. Whether dynamic pre-mRNA structure regulates this early spliceosome assembly step remains unclear. Here, we identify a 5'UTR-intron base-pairing interaction positioned near the 5' splice site that acts as an inducible structural gate for U1 engagement. In budding yeast, this element is enriched among introns required for adaptation to nutrient depletion, and in vivo DMS-MaPseq shows that starvation remodels its structure. Structure-guided disruption of pairing impairs adaptation, whereas compensatory mutations restoring pairing without restoring sequence rescue the phenotype, establishing RNA fold as the critical determinant. U1 association decreases when the gate is disrupted and recovers when pairing is restored, and increased Nam8 levels can compensate for gate disruption by stabilizing U1 engagement under stress. Thus, dynamic pre-mRNA folding gates U1 recognition, revealing how transcript architecture converts physiological state into selective splice-site choice.

molecular biology↗

snoFlake: A network model for snoRNA-RBP complexes reveals SNORD22 as a U5 snRNP-associated splicing regulator

Small nucleolar RNAs (snoRNAs) are canonically viewed as stable components of ribonucleoprotein complexes dedicated to RNA modification. Here, we developed snoFlake, a snoRNA-centric interaction network integrating physical and functional associations between box C/D snoRNAs and RNA-binding proteins (RBPs), challenging this narrow view. Using snoFlake, we systematically identified snoRNAs predicted to form noncanonical complexes with diverse RBPs, extending their roles into post-transcriptional regulation. We found 23 high-confidence network motifs enriched for RNA-processing functions, including a top-ranked module linking SNORD22 to U5 snRNP components PRPF8 and EFTUD2. SNORD22 co-binds with these spliceosomal RBPs at splice sites showing reduced U5 snRNP occupancy, suggesting a role in reinforcing spliceosomal engagement at suboptimal exons. Consistently, SNORD22 depletion promotes exclusion of weak cassette exons, altering transcript isoform composition and predicted coding output. Beyond SNORD22, snoFlake reveals snoRNAs with similar network profiles, providing a resource for uncovering previously uncharacterized snoRNA-RBP complexes and expanding the functional snoRNome.

bioinformatics↗