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October 9, 2025Nature Communications4 citationsOpen Access

Mechanistic understanding of nitrate reduction as the dominant production pathway of nitrous oxide in marine oxygen minimum zones

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XSXin SunCFClaudia FreyDMDaniel McCoy

Key Points

  • Nitrate reduction is confirmed as the primary pathway for producing nitrous oxide in oxygen minimum zones.
  • Modeling and experiments show that denitrifiers predominantly bypass nitrite for nitrate to nitrous oxide conversion.
  • Microbial types influence the nitrate reduction pathway's response to oxygen, revealing its heterogeneous nature.
  • Organic matter type and availability significantly affect the nitrous oxide production pathway in marine environments.

Abstract

Nitrous oxide (N2O), a potent greenhouse gas and ozone-depleting agent, is produced intensely in oxygen minimum zones (OMZs) predominantly through nitrate reduction NO3-→N2O . However, mechanisms and controls of this pathway remain unclear. Here, we investigate the microbial ecology governing this pathway using experiments and an ecosystem model. We experimentally confirm a critical hypothesis: most NO3-→N2O denitrifiers do not utilize extracellular nitrite, an intermediate of the pathway. Model results demonstrate that the NO3-→N2O pathway is compatible with oxygen, and that its response to oxygen is heterogeneous because it is governed by niche partitioning of distinct microbial types and thus may not follow a smooth curve. Lastly, experiments demonstrate that this pathway is sensitive to the type of organic matter, its electron acceptor, in addition to organic matter availability. These findings advance our mechanistic understanding of the primary N2O production pathway, necessary for predictions of marine N2O emissions.

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Cite This Study

Sun et al. (2025) studied this question.

synapsesocial.com/papers/68e7d631bd66d359be62660chttps://doi.org/10.1038/s41467-025-63989-9
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