Related Experiment Video
Updated: Mar 19, 2026

Visualizing Methane-Cycling Microbial Dynamics in Coastal Wetlands
Published on: January 31, 2025
Phosphate scarcity governs methane production in the global open ocean
Shengyu Wang1, Hairong Xu1, Thomas S Weber1
1Department of Earth and Environmental Sciences, University of Rochester, Rochester, NY 14627.
None:
The observed supersaturation of methane (CH4) in open-ocean surface waters implies widespread CH4 production within the well-oxygenated mixed layer, driving emissions of this potent greenhouse gas to the atmosphere. The dominant CH4 production pathway that explains this phenomenon remains poorly understood, although candidates include production during photosynthesis, zooplankton metabolism, and dissolved organic matter cycling. Here, we construct a data-assimilating model of the open-ocean CH4 cycle to test which hypothesized mechanism is most consistent with the observed global CH4 distribution. We find that only linking methane production to phosphate (PO4) scarcity can explain the observed supersaturation pattern, which is highest in subtropical gyres where PO4 is in short supply. These findings suggest that CH4 release during PO4-limited cleavage of the organic compound methylphosphonate is the dominant production pathway in the open ocean. Because this process is confined to the stratified low latitude surface, it is uniquely suited to efficiently emit the CH4 it produces to the atmosphere (>90%), before the CH4 mixes to depth and undergoes oxidation (<10%). As predicted future ocean warming and stratification exacerbates PO4 scarcity over coming centuries, our model predicts that oxic CH4 production and the resulting CH4 emissions will increase up to twofold, contributing to a suite of positive feedback between climate warming and natural greenhouse gas sources.
More Related Videos
Related Concept Videos
The Phosphorus Cycle
Marine Microbial Ecology
Deep Sea Microbial Ecology
Microbes and Methanogenesis
Metabolism of Chemolithotrophs
Microbes and Climate Change

