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Biology subjects

Saby, M.

Publications and source records attributed to Saby, M..

3 recordsLinked to original sources

Glucocorticoids reprogram human AML leukemic stem cells to promote elimination through differentiation and apoptosis

Acute myeloid leukemia (AML) is sustained by leukemic stem cells (LSCs) that can evade standard therapies and drive relapse. Targeting LSC-specific vulnerabilities is therefore essential for durable remission. Here we demonstrate that glucocorticoids (GCs) induce potent depletion of AML LSCs by promoting terminal differentiation and apoptosis. This effect is observable within 24 hours and is conserved across multiple LSC-enriched models and primary patient samples. Mechanistically, we establish that GC targeting of LSCs is mediated through the glucocorticoid receptor (NR3C1), with higher receptor binding affinity correlating with greater anti-LSC activity. We performed structure activity relationship (SAR) modeling of 24 corticosteroids and identified key features, including bulky D-ring substituents, associated with enhanced anti-LSC efficacy. Bulk and single-cell transcriptomic data revealed that GC treatment of LSCs suppresses NF-{kappa}B inflammatory signaling and disrupts stemness and quiescence programs while inducing transcriptional signatures associated with transient proliferation, metabolic stress, and terminal differentiation. Notably, GC sensitivity was associated with the expression of pre-existing inflammatory or extracellular matrix (ECM) signatures. Finally, we found that FLT3 ligand (FLT3L) is required for GC-induced proliferation of CD34- blasts but not for LSC depletion, suggesting that FLT3L levels may serve as a biomarker for blast expansion in patients receiving GC therapy. These findings support the clinical development of GC-based therapies in AML and provide mechanistic insights into how GCs target inflammatory and metabolic programs required for LSC survival.

cancer biology↗

Discovery of compounds targeting human acute myeloid leukemia stem cells via a novel high-throughput screen

Acute myeloid leukemia (AML) is sustained by leukemic stem cells (LSCs), which must be eradicated for durable remission yet remain therapy-resistant. Here, we present a scalable platform to identify compounds that eliminate LSCs by performing the first large high-throughput drug screen directly on human LSC-enriched cells. Using this system, we screened 11 142 compounds and identified 20 inhibitors selective for LSCs. For three candidates, BIO-acetoxime, SJB2-043 and UMxxxxx03, we confirmed anti-LSC activity across multiple primary patient samples and validated efficacy through xenotransplantation assays. Single-cell RNA sequencing uncovered convergent and distinct anti-LSC mechanisms of action, including USP1 inhibition, which suppressed stemness and cell-cycle programs while promoting metabolic and inflammatory stress responses. Collectively, the LSC-enriched fraction was eliminated through apoptosis or differentiation. Together, this work establishes the first platform to directly screen LSCs at scale and identifies novel vulnerabilities and therapeutics capable of eliminating the root of AML.

cancer biology↗

Inhibition of macrophage neuraminidase 1 protects against immune thrombocytopenia by limiting platelet clearance

Immune thrombocytopenia purpura (ITP) is an autoimmune disorder characterized by a reduction in circulating platelet levels, primarily due to generation of autoantibodies to platelet surface antigens followed by their spleen macrophage-mediated clearance. Emerging evidence implicates neuraminidase (sialidase) enzymes including neuraminidase 1 (NEU1) in platelet clearance and ITP severity; however, the underlying cellular mechanisms remain unknown. Using tissue-specific NEU1 knockout mouse models, we studied the contribution of platelet and macrophage NEU1 to ITP pathogenesis and evaluated whether pharmacological inhibition of NEU1 could preserve platelet counts in a murine ITP model. Constitutive and macrophage-specific, but not platelet-specific, NEU1 knockout mice showed a protection against reduction of platelet counts in the passive ITP model suggesting that macrophage, but not platelet, NEU1 promotes platelet clearance. Genetic deletion or pharmacological blockade of macrophage NEU1 also reduced platelet phagocytosis by cultured macrophages in vitro. The selective NEU1 inhibitor CG33301 protected mice against anti-CD41a antibody-induced thrombocytopenia and showed a higher efficacy compared to pan neuraminidase inhibitor oseltamivir phosphate. Our results demonstrate that the macrophage pool of NEU1 plays a central role in platelet clearance by splenocytes during ITP by activating their phagocytosis and suggest that selective NEU1 inhibition may be a promising therapeutic strategy for this disease.

biochemistry↗