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Updated: Dec 16, 2025

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
[Understanding and therapeutic targeting of aberrant mRNA splicing mechanisms in oncogenesis]
Atsushi Tanaka1,2, Susumu Kobayashi1,3, Muran Xiao1,3
1Department of Hematology-Oncology, Institute of Biomedical Research and Innovation, Foundation for Biomedical Research and Innovation at Kobe.
Abstract:
Splicing factor 3b subunit 1 (SF3B1) is the most commonly mutated RNA splicing factor identified in myelodysplastic syndrome (MDS), chronic lymphocytic leukemia, and uveal melanoma. The mechanisms by which SF3B1 mutations promote malignancy are poorly understood. Here, we integrated pan-cancer RNA sequencing to identify mutant SF3B1-dependent aberrant splicing events with a positive CRISPR screen to prioritize alterations that functionally promote oncogenesis. Our results indicated that diverse, recurrent SF3B1 mutations converge on the repression of bromodomain containing 9 (BRD9), a core component of the recently described non-canonical barrier-to-autointegration factor complex (ncBAF). Mutant SF3B1 recognizes intronic sequences within BRD9 as exons, thereby permitting inclusion of aberrant sequence (i.e., poison exon) that will result in the degradation of BRD9 mRNA. BRD9 depletion results in significant loss of ncBAF at CCCTC-binding factor (CTCF)-binding loci but has no impact on the localization of canonical BAF. These actions resulted in disturbed myeloid/erythroid differentiation and promoted the development of MDS and melanoma. Of note, correcting BRD9 mis-splicing in SF3B1-mutant cells with antisense oligonucleotides (ASOs), by targeting the poison exon with CRISPR-directed mutagenesis, or via the use of spliceosomal inhibitors are all potential therapeutic options. Our results implicate disruption of ncBAF as a critical factor promoting the development of the diverse array of cancers that carry SF3B1 mutations and suggest a mechanism-based therapeutic approach for treating these malignancies.
Insights
Mutations in Splicing Factor 3b subunit 1 (SF3B1) disrupt the non-canonical BAF complex by repressing bromodomain containing 9 (BRD9), driving MDS and melanoma. Therapeutic strategies targeting BRD9 mis-splicing offer potential treatment options.
Area of Science:
- Molecular Biology
- Cancer Genetics
- RNA Splicing
Background:
- Splicing factor 3b subunit 1 (SF3B1) mutations are common in myelodysplastic syndrome (MDS), chronic lymphocytic leukemia, and uveal melanoma.
- The precise mechanisms through which SF3B1 mutations contribute to cancer development remain largely unknown.
Purpose of the Study:
- To identify SF3B1-dependent aberrant splicing events and alterations that promote oncogenesis.
- To elucidate the functional consequences of SF3B1 mutations in cancer.
Main Methods:
- Integration of pan-cancer RNA sequencing data.
- Utilized a positive CRISPR screen to prioritize functionally relevant alterations.
- Investigated the impact of SF3B1 mutations on bromodomain containing 9 (BRD9) and the non-canonical BAF (ncBAF) complex.
Main Results:
- Recurrent SF3B1 mutations lead to the repression of BRD9 by causing the inclusion of a poison exon in BRD9 mRNA.
- BRD9 depletion disrupts ncBAF localization at CTCF-binding loci, impacting myeloid/erythroid differentiation and promoting MDS and melanoma.
- Identified potential therapeutic strategies including antisense oligonucleotides (ASOs), CRISPR-directed mutagenesis, and spliceosomal inhibitors.
Conclusions:
- Disruption of the ncBAF complex via BRD9 repression is a critical mechanism in SF3B1-mutated cancers.
- These findings suggest a mechanism-based therapeutic approach for treating SF3B1-mutated malignancies.
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