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bioRxiv · 10.1101/2025.08.05.668651

Riboflavin metabolism shapes FSP1-driven ferroptosis resistance

Abstract

Membrane protection against oxidative insults is achieved by the concerted action of glutathione peroxidase 4 (GPX4) and endogenous lipophilic antioxidants such as ubiquinone and vitamin E. Deficiencies in these protective systems lead to an increased propensity to phospholipid peroxidation and ferroptosis. More recently, ferroptosis suppressor protein 1 (FSP1) was identified as a critical ferroptosis inhibitor acting via regeneration of membrane-embedded antioxidants. Yet, regulators of FSP1 are largely uncharacterised, and their identification is essential for understanding the mechanisms buffering phospholipid peroxidation and ferroptosis. Here, we conducted a focused CRISPR-Cas9 screen to uncover factors influencing FSP1 function, identifying riboflavin (vitamin B2) as a new modulator of ferroptosis sensitivity. We demonstrate that riboflavin, unlike other vitamins that act as radical-trapping antioxidants, supports FSP1 stability and the recycling of lipid-soluble antioxidants, thereby mitigating phospholipid peroxidation. Furthermore, we show that the riboflavin antimetabolite roseoflavin markedly impairs FSP1 function and sensitises cancer cells to ferroptosis. Thus, we uncover a direct and actionable role for riboflavin in maintaining membrane integrity by promoting membrane tolerance to lipid peroxidation. Our findings provide a rational strategy to modulate the FSP1-antioxidant recycling pathway and underscore the therapeutic potential of targeting riboflavin metabolism, with implications for understanding the interaction of nutrients and their contributions to a cells antioxidant capacity.

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BibTeXRIS

Skafar, V., de Souza, I., Ferreira dos Santos, A., Porto Freitas, F., Chen, Z., Donate, M., Nepachalovich, P., Ghosh, B., Tschuck, J., Mathur, A., Nunes Alves, A., Buhr, J., Aponte-Santamaria, C., Schmitz, W., Eilers, M., Ubellacker, J. M., Elling, U., Augustin, H. G., Hadian, K., Meierjohann, S., Proneth, B., Conrad, M., Fedorova, M., Alborzinia, H., Friedmann Angeli, J. P.. 2025-08-06. Riboflavin metabolism shapes FSP1-driven ferroptosis resistance. https://doi.org/10.1101/2025.08.05.668651

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