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Updated: Jun 21, 2025

A Reporter Based Cellular Assay for Monitoring Splicing Efficiency
Published on: September 15, 2021
Cancer-associated snaR-A noncoding RNA interacts with core splicing machinery and disrupts processing of mRNA
Sihang Zhou1, Simon Lizarazo2, Leela Mouli3
1Department of Cell and Developmental Biology, University of Illinois Urbana-Champaign, Urbana, IL 61801, USA.
Abstract:
RNA polymerase III (Pol III) activity in cancer is linked to the production of small noncoding (nc)RNAs that are otherwise silent in most tissues. snaR-A (small NF90-associated RNA isoform A) - a hominid-specific ncRNA shown to enhance cell proliferation, migration, and invasion - is a cancer-emergent Pol III product that remains largely uncharacterized despite promoting growth phenotypes. Here, we applied a combination of genomic and biochemical approaches to study the biogenesis and subsequent protein interactions of snaR-A and to better understand its role as a putative driver of cancer progression. By profiling the chromatin landscapes across a multitude of primary tumor types, we show that predicted snaR-A upregulation is broadly linked with unfavorable outcomes among cancer patients. At the molecular level, we unexpectedly discover widespread interactions between snaR-A and mRNA splicing factors, including SF3B2 - a core component of the U2 small nuclear ribonucleoprotein (snRNP). We find that SF3B2 levels are sensitive to high snaR-A abundance and that depletion of snaR-A alone is sufficient to decrease intron retention levels across subpopulations of mRNA enriched for U2 snRNP occupancy. snaR-A sensitive genes are characterized by high GC content, close spatial proximity to nuclear bodies concentrated in pre-mRNA splicing factors, and functional enrichment for proteins involved in deacetylation and autophagy. We highlight examples of splicing misregulation and increased protein levels following snaR-A depletion for a wide-ranging set of factors, suggesting snaR-A-driven splicing defects may have far-reaching effects that re-shape the cellular proteome. These findings clarify the molecular activities and consequences of snaR-A in cancer, and altogether establish a novel mechanism through which Pol III overactivity may promote tumorigenesis.
Insights
Small NF90-associated RNA isoform A (snaR-A) is a cancer-emergent ncRNA that interacts with mRNA splicing factors. Its upregulation correlates with poor patient outcomes and drives cancer progression by disrupting splicing.
Area of Science:
- Oncology
- Molecular Biology
- RNA Biology
Background:
- RNA polymerase III (Pol III) activity produces small noncoding RNAs (ncRNAs) in cancer, promoting tumor growth.
- snaR-A (small NF90-associated RNA isoform A) is a hominid-specific ncRNA linked to cancer progression but remains poorly understood.
- Pol III overactivity and its products like snaR-A are implicated in tumorigenesis.
Purpose of the Study:
- To investigate the biogenesis and protein interactions of snaR-A.
- To elucidate the role of snaR-A in cancer progression.
- To understand the molecular mechanisms by which snaR-A influences cellular processes.
Main Methods:
- Genomic and biochemical approaches were used to study snaR-A.
- Chromatin landscapes were profiled across various primary tumor types.
- Interactions between snaR-A and mRNA splicing factors, including SF3B2, were analyzed.
Main Results:
- Predicted snaR-A upregulation is linked to unfavorable outcomes in cancer patients.
- snaR-A interacts with mRNA splicing factors, notably SF3B2 (a U2 snRNP component).
- snaR-A depletion reduces intron retention in U2 snRNP-occupied mRNAs, affecting genes with high GC content and specific functional enrichments.
Conclusions:
- snaR-A plays a significant role in cancer progression by interacting with splicing machinery.
- Dysregulation of snaR-A contributes to widespread splicing defects, altering the cellular proteome.
- This study establishes a novel mechanism linking Pol III overactivity to tumorigenesis via snaR-A-mediated splicing misregulation.
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