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Updated: Jan 16, 2026

Visualizing Methane-Cycling Microbial Dynamics in Coastal Wetlands
Published on: January 31, 2025
Methane concentration dynamics and association with dissolved carbon in different small artificial waterbodies:
Mingzhe Guo1, Wei Tang2, Guangyao Zhao2
1School of River and Ocean Engineering, Chongqing Jiaotong University, Chongqing 400074, China; Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing 400714, China; Chongqing School, University of Chinese Academy of Sciences, Chongqing 400714, China.
Abstract:
Small artificial waterbodies (SAWs) are significant hotspots for methane (CH4) emissions. Recent findings on CH4 production by phytoplankton via autotrophic pathways in oxic water columns have expanded the conceptual framework of surface water CH4 sources beyond the traditional heterotrophic pathways in anaerobic sediments. However, the mechanisms regulating CH4 concentrations (CCH4) in SAWs under this revised framework remain unclear. To assess the respective roles of autotrophic (dissolved inorganic carbon, DIC-driven) and heterotrophic (dissolved organic carbon, DOC-driven) pathways in driving CCH4 across SAW types, we conducted a two-year field study during algal bloom periods in 26 SAWs, including recreational waterbodies (RWs), agricultural waterbodies (AWs), and semi-intensive aquaculture waterbodies (SIAWs). Results indicate that CCH4 mean levels differed significantly among RWs (0.66 μmol L⁻¹), AWs (0.83 μmol L⁻¹), and SIAWs (0.38 μmol L⁻¹), corresponding to different aquatic ecosystem characteristics. In RWs and SIAWs, where humic-like substances accounted for 53.98 % and 57.27 % (means) of dissolved organic matter (DOM), respectively, CCH4 was directly driven by DIC. In contrast, AWs, with a lower proportion of humic-like substances (mean: 43.87 %), exhibited more frequent instances of exceptionally high methane emission fluxes values-estimated using the static chamber method-likely due to ebullition from sediments, with CCH4 was directly driven by DOC. DOM characteristics serves as a common indirect influencing factor on CCH4. These results highlight the direct role of the phytoplankton methane production pathway in driving CCH4 with a high degree of DOM degradation.
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