Quinones in natural organic matter mediate key biogeochemical processes, including methane oxidation, iron reduction, and contaminant degradation. However, pinpointing their molecular identities in the environment remains a formidable challenge due to extreme compositional complexity. Here, we developed a workflow combining dual chemical tagging with high-resolution tandem mass spectrometry to profile quinones in a complex matrix. Applying this approach, we identified previously undisclosed quinones in a representative pyrogenic sample, including benzoquinones, alkylated chromene-diones, and hydroxylated naphthoquinone. Meta-analysis across public spectral repositories (>40,000 spectra) revealed that these quinones occur widely in 33 to 819 environmental samples spanning temperate to polar ecosystems. With estimated reduction-oxidation potential of 0.21-0.41 V (pH 7), these quinones fall within the range for natural electron shuttles, contributing 2.3%-11.5% of the redox capacity in natural and pyrogenic organic matter. This dual-tagging strategy overcomes a long-standing analytical barrier, providing unprecedented molecular-level insight and enabling accurate modeling of quinone-mediated biogeochemical and contaminant dynamics in complex systems.
Timilsina et al. (Fri,) studied this question.
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