ArticleDNA research : an international journal for rapid publication of reports on genes and genomes2026
Enrichment-free deep proteomics enables proteome-scale analysis of methionine oxidation.
Article in DNA research : an international journal for rapid publication of reports on genes and genomes, 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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Abstract
Advances in mass spectrometry (MS)-based proteomics have enabled the large-scale characterization of posttranslational modifications (PTMs) through affinity-based enrichment. However, this technique introduces a bias towards selectively enrichable modifications, thus leaving oxidative modifications underexplored. Methionine oxidation (methionine sulfoxide) is an important indicator of cellular redox status, but its systematic analysis remains challenging because no enrichment method is available and artifactual oxidation can occur during sample preparation. Here, we developed an enrichment-free proteomic strategy for large-scale detection of methionine oxidation using a deep LC-MS platform. By optimizing acquisition conditions, we identified more than 260k precursors in a single-shot analysis. Under these conditions, methionine oxidation was efficiently detected, whereas many other PTMs remained poorly detected. To improve data reliability, we established a sample preparation workflow that minimized artifactual oxidation. Accordingly, we identified more than 3,500 methionine-oxidized proteins. Integration of methionine oxidation and expression proteomics across subcellular compartments revealed redox patterns under low-serum conditions, including increased mitochondrial oxidation and decreased endoplasmic reticulum oxidation. These changes are associated with metabolic reprogramming and altered antioxidant capacity. Overall, this study established an enrichment-free framework for the proteome-scale methionine oxidation analysis, and demonstrated that integrating oxidation and expression data enables the spatially resolved interpretation of cellular redox states.
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