AI Article Synopsis

  • Researchers found that M1 macrophages can prevent ferroptosis through a mechanism involving high levels of nitric oxide (NO), which inhibits the production of a lipid that contributes to ferroptosis.
  • The study utilized various biochemical techniques to investigate how NO interferes with the enzyme 15-lipoxygenase (15LOX) complexed with a protein called PEBP1, revealing that NO competes with oxygen for the enzyme's active site.
  • The findings identified key residues in the enzyme that help facilitate this competition and confirmed that NO can effectively reach and react with the enzyme in macrophages, providing new insight into how NO suppresses ferroptotic processes.

Article Abstract

We recently discovered an anti-ferroptotic mechanism inherent to M1 macrophages whereby high levels of NO suppressed ferroptosis via inhibition of hydroperoxy-eicosatetraenoyl-phosphatidylethanolamine (HpETE-PE) production by 15-lipoxygenase (15LOX) complexed with PE-binding protein 1 (PEBP1). However, the mechanism of NO interference with 15LOX/PEBP1 activity remained unclear. Here, we use a biochemical model of recombinant 15LOX-2 complexed with PEBP1, LC-MS redox lipidomics, and structure-based modeling and simulations to uncover the mechanism through which NO suppresses ETE-PE oxidation. Our study reveals that O and NO use the same entry pores and channels connecting to 15LOX-2 catalytic site, resulting in a competition for the catalytic site. We identified residues that direct O and NO to the catalytic site, as well as those stabilizing the esterified ETE-PE phospholipid tail. The functional significance of these residues is supported by in silico saturation mutagenesis. We detected nitrosylated PE species in a biochemical system consisting of 15LOX-2/PEBP1 and NO donor and in RAW264.7 M2 macrophages treated with ferroptosis-inducer RSL3 in the presence of NO, in further support of the ability of NO to diffuse to, and react at, the 15LOX-2 catalytic site. The results provide first insights into the molecular mechanism of repression of the ferroptotic Hp-ETE-PE production by NO.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8156958PMC
http://dx.doi.org/10.3390/ijms22105253DOI Listing

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