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Sanden, C.

Publications and source records attributed to Sanden, C..

2 recordsLinked to original sources

The cellular state space of AML unveils novel NPM1 subtypes with distinct clinical outcomes and immune evasion properties

Acute myeloid leukemia (AML) is a genetically and cellularly heterogeneous disease. We characterized 120 AMLs using genomic and transcriptomic analyses, including single-cell RNA sequencing. Our results reveal an extensive cellular heterogeneity that distorts the bulk transcriptomic profiles. Selective examination of the transcriptional signatures of >90,000 immature AML cells identified four main clusters, thereby extending current genomic classification of AML. Notably, NPM1 mutated AML could be stratified into two novel, clinically relevant classes, with NPM1class I associated with downregulation of MHC class II and excellent survival following hematopoietic stem cell transplantation (HSCT). NPM1class II was instead associated with resistance to allogeneic T cells in an ex vivo co culture assay, and importantly, dismal survival following HSCT. These findings provide new insights into the cellular state space of AML, define new diagnostic entities, and highlight potential therapeutic intervention points. Key PointsO_LIThe bulk transcriptional profiles of AML are mainly driven by a diverse set of cellular signatures. C_LIO_LISingle cell RNA-sequencing of the most common AML subtypes reveals marked heterogeneity extending beyond current genomic classification schemes. C_LIO_LINPM1-mutated AML can be divided into two new classes, with distinct immune evasion mechanisms and survival after transplantation. C_LI

cancer biology↗

Inducing synthetic lethality for selective targeting of acute myeloid leukemia cells harboring STAG2 mutations

Targeted therapies exploiting selective vulnerabilities of malignant cells are highly desired for clinical applications. The cohesin protein complex comprises of RAD21, SMC3, SMC1A as well as a fourth subunit that consists of either STAG1 or STAG2 and is essential for proper chromosomal segregation during mitosis. STAG2 loss-of-function mutations are recurrent driver events in acute myeloid leukemia (AML) and appear relatively early during leukemogenesis. Studies in cell lines have shown that STAG2 deficient cells are uniquely vulnerable to STAG1 perturbation, and this vulnerability could thus be exploited to selectively eliminate STAG2 null AML cells. Here we show that partial perturbation of STAG1 is well tolerated by normal human hematopoietic stem cells and does not affect their functionality. By contrast, STAG1 knockdown is lethal to STAG2 null human HSCs by inducing major mitotic defects. Moreover, STAG1 knockdown induced synthetic lethality in primary human AML cells harboring a STAG2 mutation and completely abrogated leukemia progression in xenograft models. Overall, our study provides proof-of-concept demonstration of a synthetic lethal approach to selectively target primary human cancer cells with STAG2 mutations

cancer biology↗