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Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
SRSF2 mutations drive oncogenesis by activating a global program of aberrant alternative splicing in hematopoietic
Yang Liang1,2, Toma Tebaldi1,3, Kai Rejeski1,4
1Section of Hematology, Department of Internal Medicine and Yale Cancer Center, Yale University School of Medicine, New Haven, CT, 06511, USA.
Abstract:
Recurrent mutations in the splicing factor SRSF2 are associated with poor clinical outcomes in myelodysplastic syndromes (MDS). Their high frequency suggests these mutations drive oncogenesis, yet the molecular explanation for this process is unclear. SRSF2 mutations could directly affect pre-mRNA splicing of a vital gene product; alternatively, a whole network of gene products could be affected. Here we determine how SRSF2 mutations globally affect RNA binding and splicing in vivo using HITS-CLIP. Remarkably, the majority of differential binding events do not translate into alternative splicing of exons with SRSF2P95H binding sites. Alternative splice alterations appear to be dominated by indirect effects. Importantly, SRSF2P95H targets are enriched in RNA processing and splicing genes, including several members of the hnRNP and SR families of proteins, suggesting a "splicing-cascade" phenotype wherein mutation of a single splicing factor leads to widespread modifications in multiple RNA processing and splicing proteins. We show that splice alteration of HNRNPA2B1, a splicing factor differentially bound and spliced by SRSF2P95H, impairs hematopoietic differentiation in vivo. Our data suggests a model whereby the recurrent mutations in splicing factors set off a cascade of gene regulatory events that together affect hematopoiesis and drive cancer.
Insights
Recurrent SRSF2 mutations in myelodysplastic syndromes (MDS) trigger a splicing cascade. This leads to altered RNA processing, impacting hematopoietic differentiation and driving cancer.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Recurrent SRSF2 mutations are linked to poor outcomes in myelodysplastic syndromes (MDS).
- The precise molecular mechanisms driving oncogenesis by SRSF2 mutations remain unclear.
- Investigating whether SRSF2 mutations directly impact splicing or affect a broader network is crucial.
Purpose of the Study:
- To elucidate the global effects of SRSF2 mutations on RNA binding and splicing in vivo.
- To determine the downstream consequences of SRSF2 mutations on gene regulatory networks.
- To understand the role of altered splicing in MDS pathogenesis.
Main Methods:
- Utilized HITS-CLIP (High-Throughput Sequencing of RNA with Crosslinking and Immunoprecipitation) to map SRSF2 binding sites genome-wide.
- Analyzed differential binding events and their correlation with alternative splicing.
- Investigated the impact of specific splice alterations on hematopoietic differentiation.
Main Results:
- SRSF2 mutations primarily affect RNA binding, with most differential binding events not leading to direct alternative splicing of target exons.
- Alternative splicing alterations are largely driven by indirect effects.
- SRSF2 targets are enriched in RNA processing and splicing genes, indicating a 'splicing-cascade' phenotype.
- Splice alteration of HNRNPA2B1 by SRSF2 mutations impairs hematopoietic differentiation.
Conclusions:
- SRSF2 mutations initiate a cascade of gene regulatory events affecting multiple RNA processing and splicing proteins.
- This splicing cascade contributes to altered hematopoiesis and cancer development in MDS.
- The findings provide a model for how mutations in splicing factors drive oncogenesis.
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