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Suen, C.-W.

Publications and source records attributed to Suen, C.-W..

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Integrated in silico and in vitro approaches identify SNX.2112 as a drug vulnerability in t(7;12) AML stem-like cells

The t(7;12) translocation is a chromosomal rearrangement characteristic of infant Acute Myeloid Leukemia (AML). It arises in utero and results in ectopic overexpression of homeobox gene MNX1. Using a 3-dimensional (3D) model of blood development, we recently showed that t(7;12)-AML originates at the endothelial-to-hematopoietic transition, explaining its characteristic gene expression signature. Herein, we employ that signature to interrogate the transcriptional profiles of hundreds of human cell lines against the GDSC database of drug sensitivities to identify candidate drugs against t(7;12)-AML. We employ a cell line in which we engineered t(7;12) and systematically test the candidate drugs by cell surface phenotype and clonogenic assays. Importantly, we identify HSP90 inhibitor SNX.2112 as a potential therapeutic agent against t(7;12)-AML. SNX.2112 selectively eliminates colony-initiating leukemia progenitors in vitro and decreases MNX1 expression, effects recapitulated by other HSP90 inhibitors. SNX.2112 acts at least partly through destabilisation of STAT5 signalling. Critically, SNX.2112-differential signatures uniquely map to progenitors with hemato-endothelial characteristics in t(7;12)-AML patient blasts, suggesting targeting of leukemia-initiating cells. Combinatorial treatment with chemotherapeutic agents indicates synergy, suggesting SNX.2112 potential as a targeted and cytotoxicity-sparing therapeutic approach. Overall, we successfully use an integrated computational and multi-model experimental approach to identify a drug vulnerability of t(7;12)-AML. Key pointsO_LIClassifier-based in silico drug screening identifies vulnerabilities of t(7;12)-infant leukemia C_LIO_LI2D and 3D models of t(7;12)-leukemia match HSP90 inhibition cellular and molecular responses to candidate leukemia stem cells in t(7;12) patient analysis. C_LI

cancer biology↗

MAT2A inhibition in AML unveils therapeutic potential of combining DNA demethylating agents with UPR targeting

Acute Myeloid Leukaemia (AML) is a heterogeneous disease of dismal prognosis, with vulnerabilities in epigenetic and metabolic regulation. DNA demethylating agents, e.g. azacytidine (AZA), are used as first-line therapy in AML patients unable to tolerate intensive chemotherapy regimens, often in combination with BCL-2 inhibitor venetoclax. However, the impact on survival is limited, indicating the need for alternative therapeutic strategies. Methyl-group usage for epigenetic modifications depends on methionine availability and MAT2A-driven conversion to S-adenosyl-methionine. Methyl-group production is a vulnerability in multiple tumours, including AML, and has been variably linked to impairment of different histone methyl-modifications. In contrast, we herein align MAT2A effects in AML with DNA methylation and proteostasis. We show that MAT2A inhibition can be mimicked by combining AZA with unfolded protein response (UPR) activation through targeting of valosin-containing protein (VCP)/P97. Combined AZA and P97 inhibition exceeded AZA-driven restriction of human AML cell expansion, and specifically impaired colony-formation and maintenance of CD34+ patient blasts, suggesting targeting of AML stem/progenitor-like cells. Overall, our data support combined targeting of DNA methylation and the UPR as a promising therapeutic strategy in AML.

cancer biology↗