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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
PARP inhibition leads to synthetic lethality with key splicing-factor mutations in myelodysplastic syndromes
Fangliang Zhang1, Jianai Sun2,3, Lei Zhang2
1RNA Institute, Hubei Key Laboratory of Cell Homeostasis, College of Life Sciences, Wuhan University, Wuhan, China.
Background:
Splicing factors are frequently mutated in patients with myelodysplastic syndromes and acute myeloid leukaemia. Recent studies have revealed convergent molecular defects caused by splicing factor mutations, among which R-loop dysregulation and resultant genome instability are suggested as contributing factors to disease progression. On the other hand, understanding how mutant cells survive upon aberrant R-loop formation and genome instability is essential for developing novel therapeutics.
Methods:
The immunoprecipitation was performed to identify R-loops in association with PARP1/poly-ADP-ribosylation. The western blot, immunofluorescence, and flow cytometry assays were used to test the cell viability, cell cycle arrest, apoptosis, and ATM activation in mutant cells following the treatment of the PARP inhibitor. The Srsf2(P95H) knock-in murine hematopoietic cells and MLL-AF9 transformed leukaemia model were generated to investigate the potential of the PARP inhibitor as a therapy for haematological malignancies.
Results:
The disease-causing mutations in SRSF2 activate PARP and elevate the overall poly-ADP-ribosylation levels of proteins in response to R-loop dysregulation. In accordance, mutant cells are more vulnerable to the PARP inhibitors in comparison to the wild-type counterpart. Notably, the synthetic lethality was further validated in the Srsf2(P95H) knock-in murine hematopoietic cell and MLL-AF9 leukaemia model.
Conclusions:
Our findings suggest that mutant cells antagonise the genome threat caused by R-loop disruption by PARP activation, thus making PARP targeting a promising therapeutic strategy for myeloid cancers with mutations in SRSF2.
Insights
Mutations in splicing factors cause R-loop dysregulation and genome instability in myeloid cancers. Targeting PARP, which is activated by these mutations, offers a promising therapeutic strategy for these diseases.
Area of Science:
- Hematology
- Molecular Biology
- Cancer Research
Background:
- Splicing factor mutations are common in myelodysplastic syndromes and acute myeloid leukemia.
- These mutations lead to R-loop dysregulation and genome instability, contributing to disease progression.
- Understanding mutant cell survival mechanisms is crucial for developing new therapies.
Purpose of the Study:
- To investigate the role of PARP activation in cells with splicing factor mutations.
- To evaluate the efficacy of PARP inhibitors as a therapeutic strategy for hematological malignancies with SRSF2 mutations.
Main Methods:
- Immunoprecipitation to identify R-loops associated with PARP1.
- Western blot, immunofluorescence, and flow cytometry to assess cell viability, apoptosis, and cell cycle arrest.
- Utilized Srsf2(P95H) knock-in murine hematopoietic cells and MLL-AF9 leukemia models.
Main Results:
- Disease-causing SRSF2 mutations activate PARP and increase poly-ADP-ribosylation in response to R-loop dysregulation.
- Mutant cells exhibit increased vulnerability to PARP inhibitors compared to wild-type cells.
- Synthetic lethality was confirmed in preclinical models.
Conclusions:
- Mutant cells counteract R-loop disruption-induced genome threats via PARP activation.
- Targeting PARP presents a promising therapeutic approach for myeloid cancers harboring SRSF2 mutations.
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