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Sensitivity to ATR-CHK1 pathway inhibition in AML/MDS is enhanced by SRSF2 mutations and reduced by RUNX1 loss
Samuli Eldfors1,2,3, Sumit Rai1,2, Vineet Sharma1,2
1Mass General Brigham Cancer Institute, Boston, MA, USA.
Abstract:
SRSF2 mutations occur in up to 25% of acute myeloid leukemia (AML) and 17% of myelodysplastic syndrome (MDS) cases and are associated with poor prognosis, yet no mutation-directed therapy exists. Here, we aimed to identify therapeutically targetable vulnerabilities in MDS/AML with SRSF2 mutations. Ex vivo drug-sensitivity testing of bone marrow cells from AML patients and healthy donors showed that SRSF2-mutant cells are sensitive to inhibitors of CHK1, and WEE1 DNA damage response (DDR) kinases. To test causality, we engineered isogenic K562 cell line clones expressing SRSF2 P95H/L/R mutations. RNA sequencing confirmed splicing aberrations characteristic of MDS/AML in these clones. We found that SRSF2 P95H/L/R sensitize leukemia cells to ATR-CHK1-WEE1 inhibition. Bone marrow progenitors from Srsf2 P95H and U2AF1 S34F knock-in mice showed heightened sensitivity to CHK1 inhibition, corroborating the human data. In contrast, RUNX1 mutations were linked to resistance against CHK1 and WEE1 inhibition in SRSF2-mutant AML samples. Runx1 loss also caused resistance to CHK1 inhibitors in knock-in mouse progenitors harboring Srsf2 P95H or U2AF1 S34F, indicating that RUNX1 loss is a mechanism of resistance. In conclusion, SRSF2 and U2AF1 mutations are biomarkers of sensitivity to ATR-CHK1 pathway inhibitors, while RUNX1 mutations cause resistance. These biomarkers can support patient stratification in MDS/AML.
Insights
Mutations in SRSF2 and U2AF1 sensitize leukemia cells to DNA damage response inhibitors. RUNX1 mutations confer resistance, suggesting these mutations can guide patient stratification for targeted therapies in myelodysplastic syndrome and acute myeloid leukemia.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- SRSF2 mutations are common in acute myeloid leukemia (AML) and myelodysplastic syndrome (MDS), associated with poor prognosis.
- No targeted therapies currently exist for SRSF2-mutated myeloid malignancies.
Purpose of the Study:
- To identify therapeutically targetable vulnerabilities in MDS/AML with SRSF2 mutations.
- To investigate the role of SRSF2, U2AF1, and RUNX1 mutations in drug sensitivity and resistance.
Main Methods:
- Ex vivo drug-sensitivity testing of bone marrow cells from AML patients and healthy donors.
- Engineering of isogenic cell line clones with SRSF2 mutations.
- RNA sequencing to confirm splicing aberrations.
- Analysis of knock-in mouse models (Srsf2, U2AF1, Runx1).
Main Results:
- SRSF2-mutant cells are sensitive to inhibitors of CHK1 and WEE1 DNA damage response (DDR) kinases.
- SRSF2 mutations sensitize leukemia cells to ATR-CHK1-WEE1 inhibition.
- RUNX1 mutations confer resistance to CHK1 and WEE1 inhibitors in SRSF2-mutant AML.
- RUNX1 loss is a mechanism of resistance to CHK1 inhibitors in mouse models.
Conclusions:
- SRSF2 and U2AF1 mutations are predictive biomarkers for sensitivity to ATR-CHK1 pathway inhibitors.
- RUNX1 mutations serve as biomarkers for resistance to these inhibitors.
- Biomarker-guided patient stratification can optimize treatment strategies for MDS/AML.
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