Mass Spectrometric Analysis of Free Methionine Oxidation Levels in E. coli

Abstract Oxidation of free methionine plays important roles in cellular redox homeostasis, yet its accurate quantification has been hindered by methodological challenges. Here, we introduce free methionine oxidation by blocking (fMObB), a mass spectrometry-based method that enables accurate measurement of the fractional oxidation of free methionines. Applying fMObB to E. coli, we quantify free methionine oxidation under basal and oxidative stress conditions and in strains lacking methionine sulfoxide reductases. We found that during oxidative stress, free methionines exhibit higher oxidation levels than protein-bound methionines and that methionine sulfoxide reductases play a central role in maintaining reduced free methionine pools. Together, this work establishes fMObB as a generalizable strategy for probing free methionine redox states in cellular systems.

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Publication Details

Journal
Journal of the American Society for Mass Spectrometry
Published
2026-10-05
DOI
https://doi.org/10.1021/jasms.6c00210
Primary Topic
Redox biology and oxidative stress
Type
article
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article

Mass Spectrometric Analysis of Free Methionine Oxidation Levels in E. coli

Bruno Manta, Sina Ghaemmaghami, Kyle Swovick, Kevin A. Welle et al.
Journal of the American Society for Mass Spectrometry
Redox biology and oxidative stress
article

Mass Spectrometric Analysis of Free Methionine Oxidation Levels in E. coli

Bruno Manta, Sina Ghaemmaghami, Kyle Swovick, Kevin A. Welle, Philip M. Bellomio, Jennifer R. Hryhorenko, Maria Ahmed
article en

Abstract

Abstract Oxidation of free methionine plays important roles in cellular redox homeostasis, yet its accurate quantification has been hindered by methodological challenges. Here, we introduce free methionine oxidation by blocking (fMObB), a mass spectrometry-based method that enables accurate measurement of the fractional oxidation of free methionines. Applying fMObB to E. coli, we quantify free methionine oxidation under basal and oxidative stress conditions and in strains lacking methionine sulfoxide reductases. We found that during oxidative stress, free methionines exhibit higher oxidation levels than protein-bound methionines and that methionine sulfoxide reductases play a central role in maintaining reduced free methionine pools. Together, this work establishes fMObB as a generalizable strategy for probing free methionine redox states in cellular systems.

Journal of the American Society for Mass Spectrometry
IONICS Mass Spectrometry (Canada) (CA), Institut Pasteur de Montevideo (UY), University of Rochester (US)
Openalex Percentile: Top 21%
Redox biology and oxidative stress
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