ArticleJournal of lipid research2026
Validated bioanalysis of oxylipins confirms specialized pro-resolving mediator formation in vitro and in vivo.
Article in Journal of lipid research, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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18 authors.
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Abstract
Specialized pro-resolving mediators (SPM) are di- or trihydroxylated polyunsaturated fatty acids with potent inflammation-resolving features. SPM typically occur at lower concentrations than classical pro-inflammatory eicosanoids, making their detection highly challenging. Thus, reporting of biological SPM levels has been discrepant and not always transparent, sparking uncertainty concerning the formation capacity for di- and especially for trihydroxylated SPM in vitro and in vivo. Here, we create common ground by providing a systematic and comprehensive assessment of SPM formation across a broad range of commonly employed in vitro, ex vivo, and in vivo matrices. For this purpose, a quantitative UHPLC-MS/MS method targeting 72 oxylipins (including 19 SPM) was validated in accordance with recommendations by the International Lipidomics Society. By including sample preparation (solid phase extraction) in all validation processes, a conservative lower limit of quantification (10-100 pg/ml matrix) was found to meet clearly defined criteria for signal/noise, accuracy, precision, selectivity, specificity, matrix effects, recovery, and carry-over for 19 SPM. Our results offer analytically defensible reference data to demonstrate (i) the absence of relevant SPM levels in stimulated whole blood and unstimulated cell models; (ii) only trace SPM formation in stimulated peripheral blood mononuclear cells, M1-macrophages, neutrophils, and platelet incubations; but (iii) significant SPM formation in stimulated M2a-macrophages and neutrophil/platelet co-incubations. In healthy C57BL/6JRj mice, SPM formation was low yet organ-specific, with relevant amounts of dihydroxylated SPM detected in spleen. Taken together, we demonstrate SPM formation to be robust, matrix- and stimulus-dependent, but confined to specific di- and trihydroxylated SPM.
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