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Vucetic, M.

Publications and source records attributed to Vucetic, M..

2 recordsLinked to original sources

MMRi62 induces iron depletion-driven apoptosis through a ferritin-independent mechanism

The modulation of iron metabolism is increasingly explored as a therapeutic strategy in cancer, particularly through the induction of ferroptosis. Given the central role of ferritin as a major intracellular iron buffer, targeting ferritin represents an attractive strategy to disrupt iron homeostasis; however, the lack of pharmacological approaches capable of selectively targeting ferritin currently limits the therapeutic exploitation of this vulnerability. MMRi62, initially developed to target the MDM2-MDM4 axis, has been proposed to induce ferroptosis via ferritin degradation. Here, we revisited this hypothesis in the context of medulloblastoma (MB). Contrary to this proposed mechanism, we found that MMRi62 does not trigger ferroptosis but instead induces robust apoptotic cell death. This effect is observed in both p53-mutant DAOY and p53 wild-type HD-MB03 cells, as well as in c-Myc/OTX2-driven medulloblastoma-like tumours genetically induced in brain organoids. Although ferritin degradation occurs upon treatment, genetic dissection demonstrates that neither ferritin itself nor ferritinophagy are required for MMRi62-induced cytotoxicity. Together, these findings rule out ferritin-dependent mechanisms as primary drivers of cytotoxicity. Instead, we uncovered that MMi62 induces a profound rewiring of iron metabolism consistent with a canonical iron starvation response, accompanied by a marked reduction in intracellular iron levels. Consistently, the UV-visible spectroscopic data were in agreement with the proposed iron-chelating properties of MMRi62. Taken together, our findings identify iron depletion-driven apoptosis, rather than ferroptosis, independently of ferritin degradation, as the primary mechanism of MMRi62 cytotoxicity in MB, refining its mode of action and highlighting iron homeostasis as a therapeutic vulnerability.

cancer biology↗

Deletion of Ferritin Heavy Chain Limits Tumor Growth and Promotes Iron-Dependent Stress in Medulloblastoma

Iron is essential for tumor proliferation and metabolic adaptation but becomes cytotoxic when unbuffered, creating a potential metabolic vulnerability. Ferritin, a conserved iron-storage complex, limits labile iron and establishes the upper threshold of iron tolerance in cancer cells. Here, we report the first ferritin heavy chain (FTH) knockout in a brain tumor model system. Although FTH loss was tolerated under basal conditions through adaptive remodeling of iron metabolism, it exposed profound vulnerabilities under iron stress. FTH deficiency lowered the threshold for iron toxicity, sensitizing medulloblastoma (MB) cells to both canonical ferroptosis and a mechanistically distinct iron-dependent cell death pathway. Oxidative iron stress impaired tumor growth and prolonged survival in orthotopic xenografts, whereas vitamin C-induced iron reduction triggered a selective, iron-dependent, but non-ferroptotic elimination of MB-like cells in tumor organoids. Notably, sensitivity to iron toxicity correlated strongly with cellular phenotype, with mesenchymal-like cells displaying greater susceptibility than epithelial-like counterparts. Collectively, these findings identify ferritin as a central regulator of iron tolerance in MB and establish iron toxicity, not via iron deprivation, as a therapeutically exploitable vulnerability. More broadly, this work provides a mechanistic framework for targeting iron metabolism through modulation of ferritin-dependent iron buffering and iron redox homeostasis in cancers. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=170 SRC="FIGDIR/small/739635v1_ufig1.gif" ALT="Figure 1000"> View larger version (53K): org.highwire.dtl.DTLVardef@1c499a4org.highwire.dtl.DTLVardef@431c70org.highwire.dtl.DTLVardef@2b5borg.highwire.dtl.DTLVardef@11e9ac1_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗