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Updated: Jan 20, 2026

Identification of Alternative Splicing and Polyadenylation in RNA-seq Data
Published on: June 24, 2021
RNA components of the spliceosome regulate tissue- and cancer-specific alternative splicing
Heidi Dvinge1,2, Jamie Guenthoer3, Peggy L Porter3
1Computational Biology Program, Public Health Sciences Division, Fred Hutchinson Cancer Research Center, Seattle, Washington 98109, USA.
Abstract:
Alternative splicing of pre-mRNAs plays a pivotal role during the establishment and maintenance of human cell types. Characterizing the trans-acting regulatory proteins that control alternative splicing has therefore been the focus of much research. Recent work has established that even core protein components of the spliceosome, which are required for splicing to proceed, can nonetheless contribute to splicing regulation by modulating splice site choice. We here show that the RNA components of the spliceosome likewise influence alternative splicing decisions. Although these small nuclear RNAs (snRNAs), termed U1, U2, U4, U5, and U6 snRNA, are present in equal stoichiometry within the spliceosome, we found that their relative levels vary by an order of magnitude during development, across tissues, and across cancer samples. Physiologically relevant perturbation of individual snRNAs drove widespread gene-specific differences in alternative splicing but not transcriptome-wide splicing failure. Genes that were particularly sensitive to variations in snRNA abundance in a breast cancer cell line model were likewise preferentially misspliced within a clinically diverse cohort of invasive breast ductal carcinomas. As aberrant mRNA splicing is prevalent in many cancers, we propose that a full understanding of such dysregulated pre-mRNA processing requires study of snRNAs, as well as protein splicing factors. Together, our data show that the RNA components of the spliceosome are not merely basal factors, as has long been assumed. Instead, these noncoding RNAs constitute a previously uncharacterized layer of regulation of alternative splicing, and contribute to the establishment of global splicing programs in both healthy and malignant cells.
Insights
Small nuclear RNAs (snRNAs) within the spliceosome regulate alternative splicing. Their varying levels impact gene-specific splicing, particularly in cancer, revealing a new layer of RNA-based gene regulation.
Area of Science:
- Molecular Biology
- RNA Biology
- Gene Regulation
Background:
- Alternative splicing is crucial for human cell type differentiation and maintenance.
- Protein components of the spliceosome are known regulators of alternative splicing.
- The role of spliceosome's RNA components in splicing regulation is less understood.
Purpose of the Study:
- To investigate the role of spliceosome's RNA components, specifically small nuclear RNAs (snRNAs), in alternative splicing regulation.
- To determine if variations in snRNA levels affect alternative splicing patterns.
- To explore the significance of snRNA-mediated splicing regulation in human development and cancer.
Main Methods:
- Quantification of snRNA levels across different human tissues, developmental stages, and cancer samples.
- Perturbation of individual snRNA levels in a breast cancer cell line model.
- Analysis of alternative splicing patterns using RNA sequencing.
- Correlation of snRNA abundance with splicing alterations in clinical breast cancer samples.
Main Results:
- Relative levels of U1, U2, U4, U5, and U6 snRNAs vary significantly across development, tissues, and cancers.
- Perturbing snRNA levels caused widespread, gene-specific alternative splicing changes without causing global splicing failure.
- Genes sensitive to snRNA variations in cell models were also misspliced in invasive breast ductal carcinomas.
- Identified snRNAs as key regulators of alternative splicing, not just basal factors.
Conclusions:
- Spliceosome snRNAs represent a previously uncharacterized layer of alternative splicing regulation.
- Variations in snRNA abundance contribute to global splicing programs in both healthy and malignant cells.
- Understanding snRNA-mediated splicing is essential for comprehending aberrant mRNA processing in cancer.
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