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5-oxoETE links redox control of epithelial damage detection and resilience

Yanan Ma, Miklós Lengyel iD, King Lam Hui, Yohannes A. Ambaw, Zaza Gelashvili iD, Leehyeon Kim iD, Ritchie Ly, Siyang Peng iD, Meysoon Quraishi iD, Tobias C. Walther iD, Robert V. Farese iD, Philipp Niethammer iD

DOI10.1038/s41586-026-11121-2
PublisherSpringer Science and Business Media LLC
Journal / SourceNature
Published2026-10-07
Metadata Deposited2026-10-07 (updated: 2026-10-07)
Subject—
Languageen
ISSN0028-0836, 1476-4687
Typejournal-article
Volume / Issue / Pages— / — / —
Citations0
References deposited102
Access / license metadataOpen license identified License 1 ↗A reuse license does not by itself establish whether the full text is freely readable.

Abstract

Abstract Organisms harness oxidative stress to rapidly attract white blood cells to wound sites and to kill pathogens 1–3 . To this end, host tissues increase their own oxidative stress resilience and repair capacity via adaptive redox signalling 4–6 . Here, using live zebrafish and human cells, we identify a metabolic redox signalling mechanism that integrates oxidative immune defence with tissue adaptation. We demonstrate that DHRS7, an orphan short-chain fatty acid dehydrogenase–reductase, generates or consumes the pro-inflammatory lipid 5-oxoETE as a function of cytoplasmic NADP + /NADPH ratio. At wounds, where oxidative stress and NADP + are high, 5-oxo-eicosatetraenoic acid (5-oxoETE) production by DHRS7 rapidly alerts antimicrobial white blood cells through the G-protein-coupled receptor OXER1. In undamaged tissue, where NADP + is low, DHRS7 quenches unnecessary inflammation. Notably, we find that 5-oxoETE also supports epithelial redox resilience; OXER1-deficient zebrafish exhibit intestinal apoptosis, barrier disruption and microbial inflammation. Mechanistically, 5-oxoETE induces the expression of NUDIX hydrolases, which protect the cytoplasmic nucleotide pool from oxidation and prevent apoptosis in zebrafish and human intestinal cells. Thus, our data reveal a conserved mode of redox sensing and signalling—beyond classic thiol oxidation—that leverages NADPH metabolism to orchestrate the antimicrobial and pro-resilience functions of oxidative stress.