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Unraveling the depth-dependent causal dynamics of methanogenesis and methanotrophy in a high-latitude fen peatland

Datos Bibliográficos

ID15548786
AutoresShuai Yang (0000-0002-1257-236X, Lawrence Berkeley National Laboratory, autor de correspondencia), Jinyun Tang (0000-0002-4792-1259, Lawrence Berkeley National Laboratory), Zhen Li (0000-0001-6541-2610, Lawrence Livermore National Laboratory), Kunxiaojia Yuan (0000-0002-1336-5768, Lawrence Berkeley National Laboratory), Qiong Wu (0000-0002-3169-1276, Lawrence Berkeley National Laboratory), Kuang‐Yu Chang (0000-0002-7859-5871, Lawrence Berkeley National Laboratory), Suzanne B Hodgkins (0000-0002-0489-9207, Florida State University), Rachel Wilson (0000-0002-2550-1253), Rachel M Wilson (0000-0002-5770-9614, Florida State University), Qing Zhu (0000-0002-6146-9190, Lawrence Berkeley National Laboratory), Robert Grant (0000-0002-6075-8687, University of Alberta), R F Grant (0000-0002-8890-6231), W J Riley (0000-0002-4615-2304, Lawrence Berkeley National Laboratory), S R Saleska (0000-0002-4974-3628, University of Arizona), Virginia I Rich (0000-0003-0558-102X, The Ohio State University), R K Varner (0000-0002-3571-6629, University of New Hampshire)
Año2025
Volumen20
Número3
Páginas034005-034005
Fecha de publicación2025-01-28
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaEnvironmental Research Letters (JOURNAL)
Identificadores de la revistaISSN: 1748-9326 • E-ISSN: 1748-9326
EditorialIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/adaf44
OpenAlexW4406897979
IdiomaEN
Citas recibidas1
Referencias citadas78

The dynamics of methane (CH 4 ) cycling in high-latitude peatlands through different pathways of methanogenesis and methanotrophy are still poorly understood due to the spatiotemporal complexity of microbial activities and biogeochemical processes. Additionally, long-term in situ measurements within soil columns are limited and associated with large uncertainties in microbial substrates (e.g. dissolved organic carbon, acetate, hydrogen). To better understand CH 4 cycling dynamics, we first applied an advanced biogeochemical model, ecosys , to explicitly simulate methanogenesis, methanotrophy, and CH 4 transport in a high-latitude fen (within the Stordalen Mire, northern Sweden). Next, to explore the vertical heterogeneity in CH 4 cycling, we applied the PCMCI/PCMCI+ causal detection framework with a bootstrap aggregation method to the modeling results, characterizing causal relationships among regulating factors (e.g. temperature, microbial biomass, soil substrate concentrations) through acetoclastic methanogenesis, hydrogenotrophic methanogenesis, and methanotrophy, across three depth intervals (0–10 cm, 10–20 cm, 20–30 cm). Our results indicate that temperature, microbial biomass, and methanogenesis and methanotrophy substrates exhibit significant vertical variations within the soil column. Soil temperature demonstrates strong causal relationships with both biomass and substrate concentrations at the shallower depth (0–10 cm), while these causal relationships decrease significantly at the deeper depth within the two methanogenesis pathways. In contrast, soil substrate concentrations show significantly greater causal relationships with depth, suggesting the substantial influence of substrates on CH 4 cycling. CH 4 production is found to peak in August, while CH 4 oxidation peaks predominantly in October, showing a lag response between production and oxidation. Overall, this research provides important insights into the causal mechanisms modulating CH 4 cycling across different depths, which will improve carbon cycling predictions, and guide the future field measurement strategies

Biogeochemical cycle · Biology · Biomass (ecology · Bioturbation · Cycling · Ecosystem · Methane · Methanogenesis · Peat · Sediment · Substrate (aquarium · Atmospheric and Environmental Gas Dynamics · Chemistry · Environmental Science · Fire effects on ecosystems · Peatlands and Wetlands Ecology · Ecology · Environmental Chemistry

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  • Soil incubation methods lead to large differences in inferred methane production temperature sensitivity

    Open Access•Zhen Li, R F Grant et al.•Environmental Research Letters•2024

Obras citantes distintas1
Citas por año1
Intervalo de citas2025 - 2025 (1)
Velocidad de citaciónrecent
Altamente citadoNo
Tipos de citaNeutras: 1
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