Distinct and convergent consequences of splice factor mutations in myelodysplastic syndromes

Vikas Madan1, Jia Li1,2, Siqin Zhou1

  • 1Cancer Science Institute of Singapore, National University of Singapore, Singapore, Singapore.

Insights

Myelodysplastic syndromes (MDS) involve RNA splicing defects. This study maps splicing changes caused by spliceosome mutations, revealing shared and distinct gene alterations and pathways in MDS.

Area of Science:

  • Molecular Biology
  • Genetics
  • Hematology

Background:

  • Myelodysplastic syndromes (MDS) frequently exhibit somatic mutations in RNA splicing machinery components.
  • Mutations in splice factors SF3B1, SRSF2, ZRSR2, and U2AF1 are found in over 50% of MDS cases.

Purpose of the Study:

  • To investigate the impact of specific spliceosome mutations on RNA splicing patterns in MDS.
  • To identify common and distinct sets of affected genes and biological pathways across different spliceosome mutations.

Main Methods:

  • RNA-sequencing was performed on bone marrow samples from MDS patients with defined spliceosome mutations.
  • Analysis focused on samples lacking other common co-occurring mutations to isolate the effects of spliceosome alterations.

Main Results:

  • Distinct splicing alteration landscapes were identified for each splice factor mutation.
  • Small deletions in SRSF2 resulted in the highest number of splicing alterations compared to other mutations.
  • While most mis-spliced events were mutation-specific, a subset of genes, including EZH2, showed aberrant splicing across multiple mutant groups.
  • Genes involved in deubiquitination (USP9X, USP24), splicing (LUC7L2), and PRC2 complex (EED) were aberrantly spliced in SRSF2 deletion MDS.

Conclusions:

  • The study defines the splicing signatures associated with individual splice factor mutations in MDS.
  • Converging biological consequences, including RNA splicing/transport and signaling pathways, are affected downstream of distinct spliceosome mutations.
  • Shared and unique mis-spliced genes and biological processes provide insights into MDS pathogenesis driven by spliceosome dysfunction.

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