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Cystine uptake inhibition potentiates front-line therapies in acute myeloid leukemia
Bryann Pardieu1, Justine Pasanisi1, Frank Ling1
1Université Paris Cité, Génomes, biologie cellulaire et thérapeutique U944, INSERM, CNRS, F-75010, Paris, France.
Abstract:
By querying metabolic pathways associated with leukemic stemness and survival in multiple AML datasets, we nominated SLC7A11 encoding the xCT cystine importer as a putative AML dependency. Genetic and chemical inhibition of SLC7A11 impaired the viability and clonogenic capacity of AML cell lines in a cysteine-dependent manner. Sulfasalazine, a broadly available drug with xCT inhibitory activity, had anti-leukemic activity against primary AML samples in ex vivo cultures. Multiple metabolic pathways were impacted upon xCT inhibition, resulting in depletion of glutathione pools in leukemic cells and oxidative stress-dependent cell death, only in part through ferroptosis. Higher expression of cysteine metabolism genes and greater cystine dependency was noted in NPM1-mutated AMLs. Among eight anti-leukemic drugs, the anthracycline daunorubicin was identified as the top synergistic agent in combination with sulfasalazine in vitro. Addition of sulfasalazine at a clinically relevant concentration significantly augmented the anti-leukemic activity of a daunorubicin-cytarabine combination in a panel of 45 primary samples enriched in NPM1-mutated AML. These results were confirmed in vivo in a patient-derived xenograft model. Collectively, our results nominate cystine import as a druggable target in AML and raise the possibility to repurpose sulfasalazine for the treatment of AML, notably in combination with chemotherapy.
Insights
Targeting cystine import via SLC7A11 shows promise for treating acute myeloid leukemia (AML). The drug sulfasalazine, combined with chemotherapy, demonstrated significant anti-leukemic effects in preclinical models.
Area of Science:
- Oncology
- Metabolic pathways
- Drug discovery
Background:
- Acute myeloid leukemia (AML) relies on specific metabolic pathways for stemness and survival.
- Identifying novel dependencies in AML is crucial for developing new therapeutic strategies.
Purpose of the Study:
- To identify and validate metabolic dependencies in AML.
- To investigate the therapeutic potential of targeting the xCT cystine importer in AML.
- To evaluate sulfasalazine as a repurposed drug for AML treatment.
Main Methods:
- Bioinformatic analysis of AML datasets to identify metabolic dependencies.
- Genetic and chemical inhibition of SLC7A11 (xCT) in AML cell lines.
- Ex vivo culture of primary AML samples with sulfasalazine.
- In vitro drug synergy screening and in vivo xenograft studies.
Main Results:
- SLC7A11 (xCT) was identified as a key dependency for AML cell viability and clonogenicity.
- Sulfasalazine exhibited anti-leukemic activity ex vivo, inducing oxidative stress and cell death.
- NPM1-mutated AML showed higher dependency on cysteine metabolism.
- Sulfasalazine synergized with daunorubicin and augmented daunorubicin-cytarabine chemotherapy in vitro and in vivo.
Conclusions:
- Cystine import via xCT is a druggable target in AML.
- Repurposing sulfasalazine, particularly in combination with chemotherapy, holds therapeutic potential for AML, especially NPM1-mutated subtypes.
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