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Updated: Mar 16, 2026

ACT1-CUP1 Assays Determine the Substrate-Specific Sensitivities of Spliceosomal Mutants in Budding Yeast
Published on: June 30, 2022
Cancer-associated SF3B1 mutants recognize otherwise inaccessible cryptic 3' splice sites within RNA secondary
A K Kesarwani1, O Ramirez1, A K Gupta1
1Section of Hematology, Yale Cancer Center and Yale University School of Medicine, New Haven, CT, USA.
Abstract:
Recurrent mutations in core splicing factors have been reported in several clonal disorders, including cancers. Mutations in SF3B1, a component of the U2 splicing complex, are the most common. SF3B1 mutations are associated with aberrant pre-mRNA splicing using cryptic 3' splice sites (3'SSs), but the mechanism of their selection is not clear. To understand how cryptic 3'SSs are selected, we performed comprehensive analysis of transcriptome-wide changes to splicing and gene expression associated with SF3B1 mutations in patient samples as well as an experimental model of inducible expression. Hundreds of cryptic 3'SS were detectable across the genome in cells expressing mutant SF3B1. These 3'SS are typically sequestered within RNA secondary structures and poorly accessible compared with their corresponding canonical 3'SS. We hypothesized that these cryptic 3'SS are inaccessible during normal splicing catalysis and that this constraint is overcome in spliceosomes containing mutant SF3B1. This model of secondary structure-dependent selection of cryptic 3'SS was found across multiple clonal processes associated with SF3B1 mutations (myelodysplastic syndrome and chronic lymphocytic leukemia). We validated our model predictions in mini-gene splicing assays. Additionally, we found deregulated expression of proteins with relevant functions in splicing factor-related diseases both in association with aberrant splicing and without corresponding splicing changes. Our results show that SF3B1 mutations are associated with a distinct splicing program shared across multiple clonal processes and define a biochemical mechanism for altered 3'SS choice.
Insights
SF3B1 mutations alter RNA splicing by enabling the use of cryptic 3' splice sites (3'SSs) sequestered in RNA structures. This mechanism explains aberrant splicing in clonal disorders like MDS and CLL.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Biology
Background:
- Recurrent mutations in splicing factors, particularly SF3B1, are common in clonal disorders, including cancers.
- SF3B1 mutations lead to aberrant pre-mRNA splicing, but the mechanism of cryptic 3' splice site (3'SS) selection remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which SF3B1 mutations lead to the selection of cryptic 3'SSs.
- To analyze transcriptome-wide splicing and gene expression changes associated with SF3B1 mutations.
Main Methods:
- Comprehensive transcriptome-wide analysis of splicing and gene expression in patient samples and an inducible expression model.
- Mini-gene splicing assays to validate model predictions.
Main Results:
- Hundreds of cryptic 3'SSs were detected in cells with mutant SF3B1, often sequestered within RNA secondary structures.
- A model of secondary structure-dependent cryptic 3'SS selection was identified and validated across myelodysplastic syndrome and chronic lymphocytic leukemia.
- Deregulated expression of splicing-related proteins was observed, independent of splicing changes.
Conclusions:
- SF3B1 mutations induce a distinct splicing program shared across clonal processes.
- A biochemical mechanism for altered 3'SS choice driven by RNA secondary structure accessibility has been defined.
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