Activation of lysosomal iron triggers ferroptosis in cancer.

Cañeque, Tatiana; Baron, Leeroy; Müller, Sebastian; Carmona, Alanis; Colombeau, Ludovic; Versini, Antoine; Solier, Stéphanie; Gaillet, Christine et al. · Nature · 2025

basic_science · Level V

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Abstract

Iron catalyses the oxidation of lipids in biological membranes and promotes a form of cell death called ferroptosis<sup>1</sup>. Defining where this chemistry occurs in the cell can inform the design of drugs capable of inducing or inhibiting ferroptosis in various disease-relevant settings. Genetic approaches have revealed suppressors of ferroptosis<sup>2-4</sup>; by contrast, small molecules can provide spatiotemporal control of the chemistry at work<sup>5</sup>. Here we show that the ferroptosis inhibitor liproxstatin-1 exerts cytoprotective effects by inactivating iron in lysosomes. We also show that the ferroptosis inducer RSL3 initiates membrane lipid oxidation in lysosomes. We designed a small-molecule activator of lysosomal iron-fentomycin-1-to induce the oxidative degradation of phospholipids and ultimately ferroptosis. Fentomycin-1 is able to kill iron-rich CD44<sup>high</sup> primary sarcoma and pancreatic ductal adenocarcinoma cells, which can promote metastasis and fuel drug tolerance. In such cells, iron regulates cell adaptation<sup>6,7</sup> while conferring vulnerability to ferroptosis<sup>8,9</sup>. Sarcoma cells exposed to sublethal doses of fentomycin-1 acquire a ferroptosis-resistant cell state characterized by the downregulation of mesenchymal markers and the activation of a membrane-damage response. This phospholipid degrader can eradicate drug-tolerant persister cancer cells in vitro and reduces intranodal tumour growth in a mouse model of breast cancer metastasis. Together, these results show that control of iron reactivity confers therapeutic benefits, establish lysosomal iron as a druggable target and highlight the value of targeting cell states<sup>10</sup>.

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