Sensitivity to ATR–CHK1 pathway inhibition in MDS/AML is enhanced by SRSF2 mutations and reduced by RUNX1 loss

Abstract SRSF2 mutations occur in 5–15% of acute myeloid leukemia (AML) and ~15% of myelodysplastic neoplasms (MDS), are enriched in elderly/secondary AML, and lack mutation-directed therapy. We aimed to identify vulnerabilities in MDS/AML with SRSF2 mutations. Ex vivo drug-sensitivity testing of bone marrow cells from AML patients and controls showed that SRSF2 -mutant cells are sensitive to CHK1 and WEE1 inhibitors. 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 sensitizes cells to ATR–CHK1–WEE1 inhibition. Bone marrow progenitors from Srsf2 P95H knock-in mice showed heightened sensitivity to CHK1 inhibition, corroborating the human SRSF2 -mutant data. U2af1 S34F knock-in mouse progenitors extended this vulnerability to another spliceosome-mutant context. In contrast, RUNX1 mutations were linked to resistance to CHK1 and WEE1 inhibition in SRSF2 -mutant AML samples. Runx1 disruption also caused resistance to CHK1 inhibitors in knock-in mouse progenitors harboring Srsf2 P95H or U2af1 S34F , indicating that RUNX1 loss of function 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 in splicing factor-mutant cells. These biomarkers can support patient stratification in MDS/AML.

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Journal
Leukemia
Published
2026-10-06
DOI
https://doi.org/10.1038/s41375-026-03142-7
Primary Topic
Acute Myeloid Leukemia Research
Type
article
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article

Sensitivity to ATR–CHK1 pathway inhibition in MDS/AML is enhanced by SRSF2 mutations and reduced by RUNX1 loss

Matthew J. Walter, Angelique Gilbert, Tareq Hossan, Sridhar Nonavinkere Srivatsan et al.
Leukemia
Acute Myeloid Leukemia Research
article

Sensitivity to ATR–CHK1 pathway inhibition in MDS/AML is enhanced by SRSF2 mutations and reduced by RUNX1 loss

Matthew J. Walter, Angelique Gilbert, Tareq Hossan, Sridhar Nonavinkere Srivatsan, Kimmo Porkka, Timothy Aaron Graubert, Sumit Rai, Samuli Eldfors, Amy M. Bertino, Claudia Cabrera Pastrana, Vineet Sharma
article en

Abstract

Abstract SRSF2 mutations occur in 5–15% of acute myeloid leukemia (AML) and ~15% of myelodysplastic neoplasms (MDS), are enriched in elderly/secondary AML, and lack mutation-directed therapy. We aimed to identify vulnerabilities in MDS/AML with SRSF2 mutations. Ex vivo drug-sensitivity testing of bone marrow cells from AML patients and controls showed that SRSF2 -mutant cells are sensitive to CHK1 and WEE1 inhibitors. 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 sensitizes cells to ATR–CHK1–WEE1 inhibition. Bone marrow progenitors from Srsf2 P95H knock-in mice showed heightened sensitivity to CHK1 inhibition, corroborating the human SRSF2 -mutant data. U2af1 S34F knock-in mouse progenitors extended this vulnerability to another spliceosome-mutant context. In contrast, RUNX1 mutations were linked to resistance to CHK1 and WEE1 inhibition in SRSF2 -mutant AML samples. Runx1 disruption also caused resistance to CHK1 inhibitors in knock-in mouse progenitors harboring Srsf2 P95H or U2af1 S34F , indicating that RUNX1 loss of function 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 in splicing factor-mutant cells. These biomarkers can support patient stratification in MDS/AML.

Leukemia
University of Helsinki (FI), Harvard University (US), Washington University in St. Louis (US), Helsinki University Hospital (FI), Massachusetts General Hospital (US), Mass General Brigham (US)
Openalex Percentile: Top 12%
Acute Myeloid Leukemia Research
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