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Biology subjects

Quek, L.

Publications and source records attributed to Quek, L..

2 recordsLinked to original sources

Dysregulation of chromatin via H3K27 methylation underpins differentiation arrest in Isocitrate dehydrogenase-mutant Acute Myeloid Leukaemia.

Dysregulation of cellular differentiation is a hallmark of cancer. Isocitrate dehydrogenase (IDH) is commonly mutated multiple cancers including glioma, cholangiocarcinoma, lymphoma and Acute Myeloid Leukaemia (AML). Mutant IDH generates d-2-hydroxyglutarate that inhibits enzymes including Jumonji histone demethylases and TET2. Using primary human IDH2-mutant AML cells as a model, single cell RNA-seq and ATAC-seq, we demonstrated the continuum of cell states during restoration of neutrophilic differentiation to leukaemic progenitors by Enasidenib, a mutant IDH2 inhibitor. In cells which ultimately differentiate, there is co-expression of competing GATA2/RUNX3/SOX4-driven stem-progenitor and pro-differentiation EGR1/JUN/FOS programmes, followed by expression of cell cycle and terminal neutrophil programmes involving CEBP family and SPI1/PU.1. Genes upregulated during differentiation display loss of H3K27me3 in bivalent chromatin but not of H3K4me3, while downregulated genes are enriched for PRC2/EZH2 targets. In contrast to previous reports of a TET2-dependent mechanism for IDH-mutations, we observed only a modest link between promoter DNA CpG methylation and gene expression. For the first time in primary AML, we describe the lifting of differentiation block by de-repression of pro-differentiation genes through modulation of H3K27 demethylation in bivalent chromatin, and thus highlight a novel and important mechanism in how IDH mutations disrupt cell fates in cancer.

cancer biology↗

M2-polarized macrophages control LSC fate by enhancing stemness, homing, immune evasion and metabolic reprogramming

While it is increasingly becoming clear that cancers are a symbiosis of diverse cell types and tumor clones, the tumor microenvironment (TME) in acute myeloid leukemias (AML) remains poorly understood. Here, we uncover the functional and prognostic relevance of an M2-polarized macrophage compartment. Intra bone marrow co-injection of M2d-macrophages together with leukemic blasts that fail to engraft on their own now induce fatal leukemia in mice. Even a short-term two-day in vitro exposure to M2d macrophages can "train" leukemic blasts after which cells are protected against phagocytosis, display increased mitochondrial metabolism and improved in vivo homing, resulting in full-blown leukemia. Single-cell RNAseq analysis of AML associated macrophages revealed metabolic-related pathways such as Fatty Acid Oxidation and NAD+ generation as therapeutical targetable vulnerabilities. Our study provides insight into the mechanisms by which the immune landscape contributes to aggressive leukemia development and provides alternatives for effective targeting strategies.

cancer biology↗