Cryo-EM structures of human arachidonate 12S-lipoxygenase bound to endogenous and exogenous inhibitors

Author:

Mobbs Jesse I.12ORCID,Black Katrina A.345ORCID,Tran Michelle6ORCID,Burger Wessel A. C.2345ORCID,Venugopal Hariprasad7ORCID,Holman Theodore R.6ORCID,Holinstat Michael89ORCID,Thal David M.12ORCID,Glukhova Alisa12345ORCID

Affiliation:

1. 1Drug Discovery Biology, Monash Institute of Pharmaceutical Sciences, Monash University, Parkville, VIC, Australia

2. 2ARC Centre for Cryo-Electron Microscopy of Membrane Proteins, Monash Institute of Pharmaceutical Sciences, Monash University, Parkville, VIC, Australia

3. 3Structural Biology Division, Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia

4. 4Department of Medical Biology, University of Melbourne, Melbourne, VIC, Australia

5. 5Department of Biochemistry and Pharmacology, University of Melbourne, Melbourne, VIC, Australia

6. 6Department of Chemistry and Biochemistry, University of California, Santa Cruz, Santa Cruz, CA

7. 7Ramaciotti Centre for Cryo-Electron Microscopy, Monash University, Clayton, VIC, Australia

8. 8Department of Pharmacology, University of Michigan, Ann Arbor, MI

9. 9Division of Cardiovascular Medicine, Department of Internal Medicine, University of Michigan, Ann Arbor, MI

Abstract

Abstract Human 12-lipoxygenase (12-LOX) is a key enzyme involved in platelet activation, and the regulation of its activity has been targeted for the treatment of heparin-induced thrombocytopenia. Despite the clinical importance of 12-LOX, the exact mechanisms by which it affects platelet activation are not fully understood, and the lack of structural information has limited drug discovery efforts. In this study, we used single-particle cryo-electron microscopy to determine high-resolution structures (1.7-2.8 Å) of human 12-LOX. Our results showed that 12-LOX can exist in multiple oligomeric states, from monomer to hexamer, which may affect its catalytic activity and membrane association. We also identified different conformations within the 12-LOX dimer, which likely represent different time points in its catalytic cycle. Furthermore, we identified small molecules bound to 12-LOX. The active site of the 12-LOX tetramer was occupied by an endogenous 12-LOX inhibitor, a long-chain acyl coenzyme A. In addition, we found that the 12-LOX hexamer can simultaneously bind to arachidonic acid and ML355, a selective 12-LOX inhibitor that has passed a phase 1 clinical trial for the treatment of heparin-induced thrombocytopenia and received a fast-track designation by the Food and Drug Administration. Overall, our findings provide novel insights into the assembly of 12-LOX oligomers, their catalytic mechanism, and small molecule binding, paving the way for further drug development targeting the 12-LOX enzyme.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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