Oxylipin metabolism is controlled by mitochondrial β-oxidation during bacterial inflammation

在细菌炎症期间,氧化脂质代谢受线粒体β-氧化调控。

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作者:Mariya Misheva ,Konstantinos Kotzamanis # ,Luke C Davies # ,Victoria J Tyrrell ,Patricia R S Rodrigues ,Gloria A Benavides ,Christine Hinz ,Robert C Murphy ,Paul Kennedy ,Philip R Taylor ,Marcela Rosas ,Simon A Jones ,James E McLaren ,Sumukh Deshpande ,Robert Andrews ,Nils Helge Schebb ,Magdalena A Czubala ,Mark Gurney ,Maceler Aldrovandi ,Sven W Meckelmann ,Peter Ghazal ,Victor Darley-Usmar ,Daniel A White ,Valerie B O'Donnell

Abstract

Oxylipins are potent biological mediators requiring strict control, but how they are removed en masse during infection and inflammation is unknown. Here we show that lipopolysaccharide (LPS) dynamically enhances oxylipin removal via mitochondrial β-oxidation. Specifically, genetic or pharmacological targeting of carnitine palmitoyl transferase 1 (CPT1), a mitochondrial importer of fatty acids, reveal that many oxylipins are removed by this protein during inflammation in vitro and in vivo. Using stable isotope-tracing lipidomics, we find secretion-reuptake recycling for 12-HETE and its intermediate metabolites. Meanwhile, oxylipin β-oxidation is uncoupled from oxidative phosphorylation, thus not contributing to energy generation. Testing for genetic control checkpoints, transcriptional interrogation of human neonatal sepsis finds upregulation of many genes involved in mitochondrial removal of long-chain fatty acyls, such as ACSL1,3,4, ACADVL, CPT1B, CPT2 and HADHB. Also, ACSL1/Acsl1 upregulation is consistently observed following the treatment of human/murine macrophages with LPS and IFN-γ. Last, dampening oxylipin levels by β-oxidation is suggested to impact on their regulation of leukocyte functions. In summary, we propose mitochondrial β-oxidation as a regulatory metabolic checkpoint for oxylipins during inflammation.

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