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Nonsense-Mediated RNA Decay Is a Targetable Vulnerability in Splicing Factor Mutant Myeloid Neoplasms by Enhancing
Claudia Cabrera Pastrana1, Sridhar Nonavinkere Srivatsan1, Michael O Alberti2
1Division of Oncology, Washington University School of Medicine, Saint Louis, Missouri.
Abstract:
Mutant spliceosome proteins (e.g., U2AF1S34F, SF3B1K700E, or SRSF2P95H) alter RNA splicing in myeloid neoplasms, leading to increased production of nonsense transcripts. Inhibiting the nonsense-mediated RNA decay (NMD) pathway, which is responsible for the degradation of nonsense transcripts, preferentially kills cells expressing mutant spliceosome proteins in vitro. In this study, we used an inhibitor of the kinase SMG1, a key regulator of NMD, to provide in vivo evidence that NMD is a therapeutic vulnerability for splicing factor mutant myeloid neoplasms. Primary mouse acute myeloid leukemia cells and human K562 leukemia cell lines expressing splicing factor mutants were more sensitive than wild-type (WT) cells to in vivo inhibition of SMG1 (SMG1i). Disruption of NMD activity by SMG1i led to increased R-loop levels in spliceosome WT cells, which were further increased in treated U2AF1S34F cells. This R-loop accumulation was accompanied by an increase in DNA damage. Degradation of R-loops with RNase H1 rescued spliceosome mutant cells from NMD inhibition-induced cell death. In U2AF1S34F cells, SMG1i increased NMD transcript isoforms (with reduced but detectable protein levels), which were enriched for DNA repair genes, including ATR and RAD51. Consequently, SMG1i-induced cell death in splicing factor mutant leukemias could be further enhanced by the inhibition of ATR or RAD51. This study shows that in vivo targeting of NMD is a therapeutic strategy to treat myeloid neoplasms with aberrant splicing.
Significance:
Cells with spliceosome mutations are sensitive to SMG1 inhibition in vivo due to R-loop accumulation, suggesting that nonsense-mediated decay targeting, alone or with DNA repair inhibitors, could be effective in splicing-mutant myeloid neoplasms.
Insights
Targeting the nonsense-mediated RNA decay (NMD) pathway, which degrades faulty transcripts, shows therapeutic potential for myeloid neoplasms with splicing factor mutations. Inhibiting SMG1 kinase in vivo demonstrates NMD as a vulnerability, offering a new treatment strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Mutant spliceosome proteins in myeloid neoplasms cause aberrant RNA splicing, producing nonsense transcripts.
- The nonsense-mediated RNA decay (NMD) pathway degrades these nonsense transcripts.
- In vitro studies show NMD inhibition preferentially kills cells with spliceosome mutations.
Purpose of the Study:
- To provide in vivo evidence that NMD is a therapeutic vulnerability in splicing factor mutant myeloid neoplasms.
- To investigate the effects of SMG1 kinase inhibition (SMG1i) on these cells in vivo.
Main Methods:
- Utilized a SMG1 kinase inhibitor (SMG1i) in mouse acute myeloid leukemia and human K562 cell line models.
- Assessed cellular sensitivity to SMG1i in wild-type versus spliceosome mutant cells.
- Measured R-loop levels, DNA damage, and NMD transcript isoforms following SMG1i treatment.
- Investigated the role of R-loops and DNA repair genes (ATR, RAD51) in treatment response.
Main Results:
- Spliceosome mutant cells showed increased sensitivity to in vivo SMG1i compared to wild-type cells.
- SMG1i disrupted NMD, increasing R-loop accumulation and DNA damage, particularly in mutant cells.
- Degrading R-loops rescued mutant cells from SMG1i-induced death.
- SMG1i increased NMD transcript isoforms enriched for DNA repair genes; co-inhibition of ATR or RAD51 enhanced cell death.
Conclusions:
- In vivo inhibition of NMD via SMG1 kinase is a viable therapeutic strategy for myeloid neoplasms with aberrant splicing.
- R-loop accumulation and DNA damage are key mechanisms mediating the anti-leukemia effects of NMD inhibition.
- Combined targeting of NMD and DNA repair pathways presents a promising approach for treating these malignancies.
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