Pro-inflammatory macrophages produce mitochondria-derived superoxide by reverse electron transport at complex I that regulates IL-1β release during NLRP3 inflammasome activation.
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Macrophages stimulated by lipopolysaccharide (LPS) generate mitochondria-derived reactive oxygen species (mtROS) that act as antimicrobial agents and redox signals; however, the mechanism of LPS-induced mitochondrial superoxide generation is unknown. Here we show that LPS-stimulated bone-marrow-derived macrophages produce superoxide by reverse electron transport (RET) at complex I of the electron transport chain. Using chemical biology and genetic approaches, we demonstrate that superoxide production is driven by LPS-induced metabolic reprogramming, which increases the proton motive force (∆p), primarily as elevated mitochondrial membrane potential (Δψm) and maintains a reduced CoQ pool. The key metabolic changes are repurposing of ATP production from oxidative phosphorylation to glycolysis, which reduces reliance on F1FO-ATP synthase activity resulting in a higher ∆p, while oxidation of succinate sustains a reduced CoQ pool. Furthermore, the production of mtROS by RET regulates IL-1β release during NLRP3 inflammasome activation. Thus, we demonstrate that ROS generated by RET is an important mitochondria-derived signal that regulates macrophage cytokine production.
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Acknowledgements: We thank S. Caldwell, S. Burr, L. Booty, C. Bryant, T. Akingbade, T. Prime and C. S. Yu for their assistance. This work was supported by the Medical Research Council (MRC) Metabolic Diseases Unit Mouse Biochemistry Laboratory (MC_UU_00014/5). D.M.W. is supported by European Molecular Biology Organization (EMBO) long-term fellowship ALTF 828-2021. J. Lj. M is supported by the Biotechnology and Biological Sciences Research Council (BLAST Pump-Priming Award, Grant Number BB/W01825X/1). C.F. is supported by the CRUK Programme Foundation award (C51061/A27453), ERC Consolidator Grant (ONCOFUM, ERC819920), Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) under Germany’s Excellence Strategy - EXC 2030 - 390661388, and by the Alexander von Humboldt Foundation in the framework of the Alexander von Humboldt Professorship endowed by the Federal Ministry of Education and Research. M.Y. was supported by the DFG grant to C.F. This work was funded by the MRC UK (MC_UU_00028/4 to M.P.M., MC_UU_00028/5 to J.P. and MC_UU_00028 to D.G.R) and a Wellcome Trust Investigator award (220257/Z/20/Z to M.P.M.).
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2522-5812
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European Research Council (819920)
Wellcome Trust (220257/Z/20/Z)
MRC (MC_UU_00014/5)
MRC (MC_UU_00028/4)
MRC (MC_UU_00028/5)
BBSRC (via Unviersity of Brighton) (BB/W01825X/1)

