Nonlinear Responses of Anaerobic Methane Oxidation to Water Table Drawdown in Peatlands

Abstract Anaerobic oxidation of methane (AOM) serves as a key methane (CH4) sink that attenuates methane emissions from peatlands. Climate change has induced widespread water table drawdown in peatlands, but the response of AOM to the water table depth (WTD) and the temperature sensitivity remain unclear. Using 13CH4-labeled incubations, we investigated the potential of AOM in composite peat samples (0–30 cm) collected from the Zoige peatland on the eastern Qinghai–Tibet Plateau along a drainage gradient (annual mean WTD of 15–45 cm) across temperatures of 5–25 °C. We found that AOM rates have a unimodal response to increasing WTD, peaking at sites with an annual mean WTD of a 30 cm WTD. This result was further supported by a global synthesis of 13C/14C-tracer-based peatland AOM measurements. The lowest temperature sensitivity (Q10 = 2.4) and activation energy (Ea = 57 kJ mol–1) also occurred at this WTD. Metabolic pathways shifted from ANME-2d archaea-driven syntrophy to NC10 bacterial-mediated AOM along the WTD gradient. Our findings provide a mechanistic framework to develop rewetting strategies to raise the climate mitigation potential of peatlands under future warming.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-09-12
DOI
https://doi.org/10.1021/acs.est.6c06040
Primary Topic
Peatlands and Wetlands Ecology
Type
article
Field-Weighted Citation Impact
0.00

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article

Nonlinear Responses of Anaerobic Methane Oxidation to Water Table Drawdown in Peatlands

Mingda Wang, Fang Chen, Lichao Fan, Gang Yang et al.
Environmental Science & Technology
Peatlands and Wetlands Ecology
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Nonlinear Responses of Anaerobic Methane Oxidation to Water Table Drawdown in Peatlands

Mingda Wang, Fang Chen, Lichao Fan, Gang Yang, Maxim Dorodnikov, Yakov Kuzyakov, Shuai Qian, Shuyuan Liu, Zhengrong Li, Klaus‐Holger Knorr, Sixiang Wang, Xiaodong Xu
article en

Abstract

Abstract Anaerobic oxidation of methane (AOM) serves as a key methane (CH4) sink that attenuates methane emissions from peatlands. Climate change has induced widespread water table drawdown in peatlands, but the response of AOM to the water table depth (WTD) and the temperature sensitivity remain unclear. Using 13CH4-labeled incubations, we investigated the potential of AOM in composite peat samples (0–30 cm) collected from the Zoige peatland on the eastern Qinghai–Tibet Plateau along a drainage gradient (annual mean WTD of 15–45 cm) across temperatures of 5–25 °C. We found that AOM rates have a unimodal response to increasing WTD, peaking at sites with an annual mean WTD of a 30 cm WTD. This result was further supported by a global synthesis of 13C/14C-tracer-based peatland AOM measurements. The lowest temperature sensitivity (Q10 = 2.4) and activation energy (Ea = 57 kJ mol–1) also occurred at this WTD. Metabolic pathways shifted from ANME-2d archaea-driven syntrophy to NC10 bacterial-mediated AOM along the WTD gradient. Our findings provide a mechanistic framework to develop rewetting strategies to raise the climate mitigation potential of peatlands under future warming.

Environmental Science & Technology
Peoples' Friendship University of Russia (RU), University of Münster (DE), Northwest University (US), North West Agriculture and Forestry University (CN), Ministry of Agriculture and Rural Affairs (CN), Shaanxi University of Science and Technology (CN), FH Münster (DE), University of Göttingen (DE)
Natural Science Basic Research Program of Shaanxi Province
Climate action
Openalex Percentile: Top 11%
Peatlands and Wetlands Ecology
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