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McCurry, D.

Publications and source records attributed to McCurry, D..

2 recordsLinked to original sources

Molecular and cellular dynamics of measurable residual disease progression in myelodysplastic syndromes

Cancer relapse after treatment invariably proceeds from the persistence and progression of measurable residual disease (MRD), an ultrasmall malignant population. Despite the poor prognostic impact established by increasingly sensitive MRD detection methods, the molecular pathways defining MRD remain unknown. To identify the unique features of MRD and the molecular forces shaping its progression, we performed single-cell multi-omic profiling on DNA, RNA and protein layers for a longitudinal patient cohort with relapsed myelodysplastic syndromes (MDS) after stem cell transplantation (SCT), the only curative modality for MDS. We provide a comprehensive molecular portrait of MRD cells with novel markers, shared across genetically heterogeneous patients. MDS relapse after SCT manifested universally with marked phenotypic evolution. Genotype and phenotype analyses revealed MRD progression as a dynamic, evolutionary process rather than a static expansionary one, driven by both subclonal sweeping and cell state transitions. Malignant cells adapted to infiltrating T cells by rewiring IFN-{gamma} responses to activate a key immunoevasive pathway. Our study demonstrates the power of longitudinal, single-cell multi-omic analysis for identifying, tracking, and understanding MRD cells, opening new avenues to target MRD persistence and progression.

cancer biology↗

ASXL1 truncating mutations drive leukemic resistance to T cell attack

We previously found that specific exhausted T cell subsets defined response, but not resistance, to donor lymphocyte infusions (DLI), a curative immunotherapy for leukemic relapse following allogeneic stem cell transplant (SCT). To identify leukemia molecular pathways that drive resistance, we analyzed whole exome and targeted mutation panel sequencing in two independent cohorts of DLI-treated patients, nominating oncogenic, truncating mutations in ASXL1 (ASXL1MUT) as the genetic basis for DLI resistance. Deep interrogation of 138,152 bone marrow single myeloid cell transcriptomes (scRNA-seq) from this cohort linked DLI resistance to a transcriptional state notable for leukemic stem cell identity and HLA-I suppression. In silico analysis of publicly available scRNA- and ATAC-seq data in acute myeloid and chronic myelomonocytic leukemias, respectively, confirmed an association between ASXL1MUT and HLA-I suppression across myeloid malignancies. CRISPR correction of the endogenous ASXL1MUT in the K562 leukemic cell line increased HLA-I, but not HLA-II, surface protein expression through increased deposition of the activating H3K4Me3 mark with only modest effect on the repressive H3K27Me3 mark, suggesting a Polycomb-independent mechanism of action. Indeed, inhibitors of EZH2, a critical component of the PRC2 complex, significantly upregulated HLA-I surface protein expression independently of ASXL1MUT, suggesting that EZH2 inhibition could bypass ASXL1MUT-mediated HLA-1 suppression. Importantly, ASXL1CORRECTION significantly increased CD8+ T cell recognition, activation and killing, and ASXL1MUT-mediated T cell suppression could be overcome by EZH2 inhibition. Thus, by integrating molecular analyses with immuno-functional studies, we define a novel oncogene-driven pathway of immune evasion and propose a therapeutic strategy to re-engage T cell killing in ASXL1MUT tumors.

cancer biology↗