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Published on: September 20, 2016
DNMT3A R882 Mutations Confer Unique Clinicopathologic Features in MDS Including a High Risk of AML Transformation
Majd Jawad1, Michelle Afkhami2,3, Yi Ding4
1Division of Hematopathology, Department of Laboratory Medicine and Pathology, Mayo Clinic, Rochester, MN, United States.
Abstract:
DNMT3A mutations play a prominent role in clonal hematopoiesis and myeloid neoplasms with arginine (R)882 as a hotspot, however the clinical implications of R882 vs. non-R882 mutations in myeloid neoplasms like myelodysplastic syndrome (MDS) is unclear. By data mining with publicly accessible cancer genomics databases and a clinical genomic database from a tertiary medical institution, DNMT3A R882 mutations were found to be enriched in AML (53% of all DNMT3A mutations) but decreased in frequency in clonal hematopoiesis of indeterminate potential (CHIP) (10.6%) or other myeloid neoplasms including MDS (27%) (p<.001). Next with the largest cohort of patients with DNMT3A R882 mutant MDS known to date from multiple institutions, DNMT3A R882 mutant MDS cases were shown to have more severe leukopenia, enriched SRSF2 and IDH2 mutations, increased cases with excess blasts (47% vs 22.5%, p=.004), markedly increased risk of AML transformation (25.8%, vs. 1.7%, p=.0001) and a worse progression-free survival (PFS) (median 20.3, vs. >50 months, p=.009) than non-R882 mutant MDS cases. DNMT3A R882 mutation is an independent risk factor for worse PFS, and importantly the differences in the risk of AML transformation between R882 vs. non-R882 mutant patients cannot be explained by different treatment approaches. Interestingly the higher risk of AML transformation and the worse PFS in DNMT3A R882 mutant MDS cases are mitigated by coexisting SF3B1 or SRSF2 mutations. The unique clinicopathologic features of DNMT3A R882 mutant MDS shed light on the prognostic and therapeutic implications of DNMT3A R882 mutations.
Insights
DNMT3A R882 mutations are more common in acute myeloid leukemia (AML) than myelodysplastic syndrome (MDS). R882 mutant MDS patients face a higher risk of AML transformation and worse progression-free survival, but co-mutations may offer a better prognosis.
Area of Science:
- Hematology
- Oncology
- Genetics
Background:
- DNMT3A mutations are key in clonal hematopoiesis and myeloid neoplasms.
- Arginine (R)882 is a hotspot for DNMT3A mutations, but R882 vs. non-R882 clinical implications in MDS remain unclear.
Purpose of the Study:
- To investigate the clinical significance of DNMT3A R882 mutations in myeloid neoplasms, particularly myelodysplastic syndrome (MDS).
- To compare the clinical and genomic features of DNMT3A R882 mutant MDS with non-R882 mutant MDS.
Main Methods:
- Data mining of public cancer genomics databases and a tertiary medical institution's clinical genomic database.
- Analysis of the largest known cohort of DNMT3A R882 mutant MDS patients from multiple institutions.
Main Results:
- DNMT3A R882 mutations are enriched in AML but less frequent in CHIP and MDS.
- DNMT3A R882 mutant MDS exhibits more severe leukopenia, enriched SRSF2/IDH2 mutations, higher excess blasts, and a markedly increased risk of AML transformation (25.8% vs 1.7%).
- DNMT3A R882 mutant MDS has significantly worse progression-free survival (median 20.3 months vs >50 months), with R882 mutation being an independent risk factor.
Conclusions:
- DNMT3A R882 mutation is an independent prognostic factor for worse progression-free survival in MDS.
- Coexisting SF3B1 or SRSF2 mutations may mitigate the adverse outcomes associated with DNMT3A R882 mutant MDS.
- Understanding these unique features aids in prognostic assessment and therapeutic strategies for DNMT3A R882 mutant MDS.
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