ArticleBlood2025
Fusion oncoproteins and cooperating mutations define disease phenotypes in NUP98-rearranged leukemia.
Article in Blood, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Nucleoporin 98 Rearrangements in Acute Leukemia: A Genomic Landscape Study.Hematological oncology · 2026Article
- Immunophenotypic, Cytogenetic, and Molecular Characterization of NUP98-Rearranged Pediatric Myeloid Neoplasms.Modern pathology : an official journal of the United States and Canadian Academy of Pathology, Inc · 2026Article
- Durable remission despite transplantation with active disease in therapy-related NUP98::TOP1-rearranged acute myeloid leukemia.Annals of hematology · 2026Article
- A unified photosensitizer platform forbioRxiv : the preprint server for biology · 2026Article
- Preferential formation of NUP98-KDM5A condensates at specific H3K4me3-rich loci drives leukemogenic gene expression.bioRxiv : the preprint server for biology · 2026Article
- Using genomics to refine pediatric AML risk stratification.Hematology. American Society of Hematology. Education Program · 2025Review
- B/T Mixed Phenotype Acute Leukaemia HarbouringEJHaem · 2025Article
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Abstract
abstractLeukemias with NUP98 rearrangements exhibit heterogeneous phenotypes such as acute myeloid leukemia, T-cell acute lymphoblastic leukemia (T-ALL), or myelodysplastic syndrome/neoplasms associated with fusion partners, whereas the mechanism responsible for this heterogeneity is poorly understood. Through genome-wide mutational and transcriptional analyses of 177 NUP98-rearranged leukemias, we show that cooperating alterations are associated with differentiation status even among leukemias sharing the same NUP98 fusions, such as NUP98::KDM5A acute megakaryocytic leukemia with RB1 loss or T-ALL with NOTCH1 mutations. CUT&RUN profiling of in vitro cord blood CD34+ cell (cbCD34) models of major NUP98 fusions revealed that NUP98-fusion oncoproteins (FOs) directly regulate differentiation-related genes contributing to the disease phenotypes, represented by NUP98::KDM5A binding to MEIS2 or GFI1B for megakaryocyte (MK) differentiation. In patient samples, NUP98-FO binding patterns are heterogeneous, potentially shaped by somatic mutations and differentiation status. Using cbCD34 models and CRISPR/Cas9 gene editing, we show that RB1 loss cooperates with NUP98::KDM5A by blocking terminal differentiation toward platelets and expanding MK-like cells, whereas WT1 frameshift mutations skew differentiation toward dormant lymphoid-myeloid primed progenitor cells and cycling granulocyte-monocyte progenitor cells, providing evidence for NUP98-rearranged leukemia phenotypes affected by cooperating alterations. NUP98::KDM5A cbCD34 models with RB1 or WT1 alterations have different sensitivities to menin inhibition, suggesting that cellular differentiation provides stage-specific menin dependencies and resistance mechanisms that can be leveraged for future treatment strategies for NUP98-rearranged leukemia.
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