Discovering selective antiferroptotic inhibitors of the 15LOX/PEBP1 complex noninterfering with biosynthesis of lipid mediators

Author:

Dar Haider H.1,Mikulska-Ruminska Karolina2,Tyurina Yulia Y.1ORCID,Luci Diane K.3,Yasgar Adam3ORCID,Samovich Svetlana N.1ORCID,Kapralov Alexander A.1,Souryavong Austin B.1,Tyurin Vladimir A.1ORCID,Amoscato Andrew A.1,Epperly Michael W.4,Shurin Galina V.1,Standley Melissa5,Holman Theodore R.5,St. Croix Claudette M.6ORCID,Watkins Simon C.6,VanDemark Andrew P.7,Rana Sandeep3,Zakharov Alexey V.3ORCID,Simeonov Anton 3,Marugan Juan3ORCID,Mallampalli Rama K.8,Wenzel Sally E.1ORCID,Greenberger Joel S.4,Rai Ganesha3ORCID,Bayir Hülya19,Bahar Ivet10ORCID,Kagan Valerian E.1ORCID

Affiliation:

1. Department of Environmental and Occupational Health, Center for Free Radical and Antioxidant Health, University of Pittsburgh, Pittsburgh, PA 15260

2. Department of Biophysics, Faculty of Physics Astronomy and Informatics, Institute of Physics, Nicolaus Copernicus University in Toruń, Toruń, Poland

3. National Center for Advancing Translational Sciences, Rockville, MD 20892

4. Department of Radiation Oncology, University of Pittsburgh, Pittsburgh, PA 15260

5. Department of Chemistry and Biochemistry, University of California Santa Cruz, Santa Cruz, CA 95064

6. Department of Cell Biology, University of Pittsburgh, Pittsburgh, PA 15260

7. Department of Biological Sciences, University of Pittsburgh, Pittsburgh, PA 15260

8. Department of Internal Medicine, The Ohio State University, Columbus, OH 43210

9. Department of Pediatrics, Division of Critical Care and Hospital Medicine, Redox Health Center, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY 10032

10. Laufer Center for Physical Quantitative Biology and Department of Biochemistry and Cell Biology, School of Medicine, Stony Brook University, NY 11794

Abstract

Programmed ferroptotic death eliminates cells in all major organs and tissues with imbalanced redox metabolism due to overwhelming iron-catalyzed lipid peroxidation under insufficient control by thiols (Glutathione (GSH)). Ferroptosis has been associated with the pathogenesis of major chronic degenerative diseases and acute injuries of the brain, cardiovascular system, liver, kidneys, and other organs, and its manipulation offers a promising new strategy for anticancer therapy. This explains the high interest in designing new small-molecule–specific inhibitors against ferroptosis. Given the role of 15-lipoxygenase (15LOX) association with phosphatidylethanolamine (PE)-binding protein 1 (PEBP1) in initiating ferroptosis-specific peroxidation of polyunsaturated PE, we propose a strategy of discovering antiferroptotic agents as inhibitors of the 15LOX/PEBP1 catalytic complex rather than 15LOX alone. Here we designed, synthesized, and tested a customized library of 26 compounds using biochemical, molecular, and cell biology models along with redox lipidomic and computational analyses. We selected two lead compounds, FerroLOXIN-1 and 2, which effectively suppressed ferroptosis in vitro and in vivo without affecting the biosynthesis of pro-/anti-inflammatory lipid mediators in vivo. The effectiveness of these lead compounds is not due to radical scavenging or iron-chelation but results from their specific mechanisms of interaction with the 15LOX-2/PEBP1 complex, which either alters the binding pose of the substrate [eicosatetraenoyl-PE (ETE-PE)] in a nonproductive way or blocks the predominant oxygen channel thus preventing the catalysis of ETE-PE peroxidation. Our successful strategy may be adapted to the design of additional chemical libraries to reveal new ferroptosis-targeting therapeutic modalities.

Funder

HHS | National Institutes of Health

Polish National Science Centre

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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