Molecular Mechanisms of Nemorosone-Induced Ferroptosis in Cancer Cells

Author:

Fernández-Acosta Roberto1ORCID,Hassannia Behrouz234,Caroen Jurgen5ORCID,Wiernicki Bartosz23,Alvarez-Alminaque Daniel6,Verstraeten Bruno23,Van der Eycken Johan5,Vandenabeele Peter237,Vanden Berghe Tom234ORCID,Pardo-Andreu Gilberto L.6ORCID

Affiliation:

1. Department of Pharmacy, Institute of Pharmacy and Food, University of Havana, 222 St. # 2317, La Coronela, La Lisa, Havana 13600, Cuba

2. Cell Death and Inflammation Unit, VIB Center for Inflammation Research (IRC), 9052 Ghent, Belgium

3. Department of Biomedical Molecular Biology (DBMB), Ghent University, 9052 Ghent, Belgium

4. Laboratory of Pathophysiology, Department of Biomedical Sciences, University of Antwerp, 2000 Antwerp, Belgium

5. Laboratory for Organic and Bio-Organic Synthesis, Department of Organic and Macromolecular Chemistry, Ghent University, 9000 Ghent, Belgium

6. Center for Research and Biological Evaluations, Institute of Pharmacy and Food, University of Havana, 222 St. # 2317, La Coronela, La Lisa, Havana 13600, Cuba

7. Methusalem Program, Ghent University, 9052 Ghent, Belgium

Abstract

Ferroptosis is an iron-dependent cell death-driven by excessive peroxidation of polyunsaturated fatty acids (PUFAs) of membranes. A growing body of evidence suggests the induction of ferroptosis as a cutting-edge strategy in cancer treatment research. Despite the essential role of mitochondria in cellular metabolism, bioenergetics, and cell death, their function in ferroptosis is still poorly understood. Recently, mitochondria were elucidated as an important component in cysteine-deprivation-induced (CDI) ferroptosis, which provides novel targets in the search for new ferroptosis-inducing compounds (FINs). Here, we identified the natural mitochondrial uncoupler nemorosone as a ferroptosis inducer in cancer cells. Interestingly, nemorosone triggers ferroptosis by a double-edged mechanism. In addition to decreasing the glutathione (GSH) levels by blocking the System xc cystine/glutamate antiporter (SLC7A11), nemorosone increases the intracellular labile Fe2+ pool via heme oxygenase-1 (HMOX1) induction. Interestingly, a structural variant of nemorosone (O-methylated nemorosone), having lost the capacity to uncouple mitochondrial respiration, does not trigger cell death anymore, suggesting that the mitochondrial bioenergetic disruption via mitochondrial uncoupling is necessary for nemorosone-induced ferroptosis. Our results open novel opportunities for cancer cell killing by mitochondrial uncoupling-induced ferroptosis.

Funder

Vlaamse Interuniversitaire Raad (VLIR)-Belgium/Ministerio de Educación Superior

Ministerio de Ciencia Tecnología y Medio Ambiente

FWO

Special Research Fund UGent

Foundation against Cancer

Publisher

MDPI AG

Subject

General Medicine

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