Targeting ferroptosis protects against experimental (multi)organ dysfunction and death

Author:

Van Coillie Samya,Van San Emily,Goetschalckx Ines,Wiernicki BartoszORCID,Mukhopadhyay Banibrata,Tonnus WulfORCID,Choi Sze Men,Roelandt Ria,Dumitrascu Catalina,Lamberts Ludwig,Dams Geert,Weyts Wannes,Huysentruyt Jelle,Hassannia Behrouz,Ingold Irina,Lele Suhas,Meyer Evelyne,Berg Maya,Seurinck RuthORCID,Saeys Yvan,Vermeulen An,van Nuijs Alexander L. N.,Conrad MarcusORCID,Linkermann AndreasORCID,Rajapurkar Mohan,Vandenabeele PeterORCID,Hoste Eric,Augustyns KoenORCID,Vanden Berghe TomORCID

Abstract

AbstractThe most common cause of death in the intensive care unit (ICU) is the development of multiorgan dysfunction syndrome (MODS). Besides life-supporting treatments, no cure exists, and its mechanisms are still poorly understood. Catalytic iron is associated with ICU mortality and is known to cause free radical-mediated cellular toxicity. It is thought to induce excessive lipid peroxidation, the main characteristic of an iron-dependent type of cell death conceptualized as ferroptosis. Here we show that the severity of multiorgan dysfunction and the probability of death are indeed associated with plasma catalytic iron and lipid peroxidation. Transgenic approaches underscore the role of ferroptosis in iron-induced multiorgan dysfunction. Blocking lipid peroxidation with our highly soluble ferrostatin-analogue protects mice from injury and death in experimental non-septic multiorgan dysfunction, but not in sepsis-induced multiorgan dysfunction. The limitations of the experimental mice models to mimic the complexity of clinical MODS warrant further preclinical testing. In conclusion, our data suggest ferroptosis targeting as possible treatment option for a stratifiable subset of MODS patients.

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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