Methane oxidation in African lakes increases with phytoplankton and outweighs photosynthesis-driven oxic methane production

Lakes are large natural sources of methane (CH4), a potent greenhouse gas, resulting from the net balance of inputs from anaerobic and oxic methane production (OMP) and removal by methane oxidation (MOX). Here we investigate spatial patterns and causes of MOX variability in 79 African lakes. MOX is highest in the most productive lakes presumably due to methanotrophs attached to phytoplankton, as well as in lakes draining the wetlands of the Congo basin presumably due to inputs of methanotrophs from flooded forest soils. MOX represents the largest sink of dissolved CH4 in the mixed layer (>70%) compared to the diffusive emission to the atmosphere (FCH4). Photosynthesis-driven OMP estimated from literature data represents a small fraction of both MOX and FCH4, and this fraction decreases with lake productivity and FCH4 intensity. Available evidence suggests that photosynthesis-driven OMP increase supported by eutrophication can be compensated by a stronger increase in MOX. Productivity increases lake methane oxidation (MOX) due to methanotrophs attachment to phytoplankton. Oxic methane production represents a small fraction of MOX, so its increase with eutrophication will be compensated by a stronger increase in MOX.

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Publication Details

Journal
Nature Communications
Published
2026-09-29
DOI
https://doi.org/10.1038/s41467-026-78255-9
Primary Topic
Marine and coastal ecosystems
Type
article
Field-Weighted Citation Impact
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article

Methane oxidation in African lakes increases with phytoplankton and outweighs photosynthesis-driven oxic methane production

Jean‐Pierre Descy, Cédric Morana, Loris Deirmendjian, Alberto Vieira Borges et al.
Nature Communications
Marine and coastal ecosystems
article

Methane oxidation in African lakes increases with phytoplankton and outweighs photosynthesis-driven oxic methane production

Jean‐Pierre Descy, Cédric Morana, Loris Deirmendjian, Alberto Vieira Borges, Pascal M. Isumbisho, Steven Bouillon, William Okello, Willy Champenois, Patrick A. Omeja, Ismael A. Kimirei
article en

Abstract

Lakes are large natural sources of methane (CH4), a potent greenhouse gas, resulting from the net balance of inputs from anaerobic and oxic methane production (OMP) and removal by methane oxidation (MOX). Here we investigate spatial patterns and causes of MOX variability in 79 African lakes. MOX is highest in the most productive lakes presumably due to methanotrophs attached to phytoplankton, as well as in lakes draining the wetlands of the Congo basin presumably due to inputs of methanotrophs from flooded forest soils. MOX represents the largest sink of dissolved CH4 in the mixed layer (>70%) compared to the diffusive emission to the atmosphere (FCH4). Photosynthesis-driven OMP estimated from literature data represents a small fraction of both MOX and FCH4, and this fraction decreases with lake productivity and FCH4 intensity. Available evidence suggests that photosynthesis-driven OMP increase supported by eutrophication can be compensated by a stronger increase in MOX. Productivity increases lake methane oxidation (MOX) due to methanotrophs attachment to phytoplankton. Oxic methane production represents a small fraction of MOX, so its increase with eutrophication will be compensated by a stronger increase in MOX.

Nature Communications
University of Liège (BE), Tanzania Fisheries Research Institute (TZ), National Agricultural Research Institute (UG), Soroti University (UG), Institut Supérieur Pédagogique Technique (CD), Makerere University (UG), KU Leuven (BE)
Openalex Percentile: Top 15%
Marine and coastal ecosystems
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