Constrained Forest Methane Sink by Thermal Adaptation of Soil Methanotrophs

ABSTRACT Climate warming can stimulate soil methanotroph‐mediated CH 4 oxidation, thereby mitigating the increase in atmospheric CH 4 concentrations in response to anthropogenic activities. However, the positive response of microbial activity to warming often weakens over time owing to thermal adaptation. Whether soil methanotrophs also show such adaptation in response to warming remains unknown, adding considerable uncertainty to predictions of soil CH 4 sink in a warming world. Here, we collected soils from 67 forest sites spanning a broad thermal gradient to investigate the response of microbial CH 4 oxidation to long‐term temperature change. We find that microbial CH 4 oxidation rates decrease with rising mean annual temperature, indicating that soil methanotrophs thermally adapt to long‐term temperature change. Our results further show that the thermal adaptation of microbial CH 4 oxidation decreases following long‐term exposure to experimentally elevated CH 4 concentrations. Our findings suggest that the enhancement of soil microbial CH 4 oxidation rates resulting from warming may be smaller than previously predicted and that considering thermal adaptation of microbial CH 4 oxidation under diverse CH 4 concentrations is crucial for accurate predictions of future soil CH 4 sinks.

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Publication Details

Journal
Advanced Science
Published
2026-08-25
DOI
https://doi.org/10.1002/advs.77426
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
Field-Weighted Citation Impact
0.00

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article

Constrained Forest Methane Sink by Thermal Adaptation of Soil Methanotrophs

Xuhui Zhou, Xi Zhang, Zhenghu Zhou, Hongyang Chen et al.
Advanced Science
Soil Carbon and Nitrogen Dynamics
article

Constrained Forest Methane Sink by Thermal Adaptation of Soil Methanotrophs

Xuhui Zhou, Xi Zhang, Zhenghu Zhou, Hongyang Chen, Baizhi Jiang, Nianpeng He
article en

Abstract

ABSTRACT Climate warming can stimulate soil methanotroph‐mediated CH 4 oxidation, thereby mitigating the increase in atmospheric CH 4 concentrations in response to anthropogenic activities. However, the positive response of microbial activity to warming often weakens over time owing to thermal adaptation. Whether soil methanotrophs also show such adaptation in response to warming remains unknown, adding considerable uncertainty to predictions of soil CH 4 sink in a warming world. Here, we collected soils from 67 forest sites spanning a broad thermal gradient to investigate the response of microbial CH 4 oxidation to long‐term temperature change. We find that microbial CH 4 oxidation rates decrease with rising mean annual temperature, indicating that soil methanotrophs thermally adapt to long‐term temperature change. Our results further show that the thermal adaptation of microbial CH 4 oxidation decreases following long‐term exposure to experimentally elevated CH 4 concentrations. Our findings suggest that the enhancement of soil microbial CH 4 oxidation rates resulting from warming may be smaller than previously predicted and that considering thermal adaptation of microbial CH 4 oxidation under diverse CH 4 concentrations is crucial for accurate predictions of future soil CH 4 sinks.

Advanced Science
Northeast Forestry University (CN)
National Natural Science Foundation of China, National Key Research and Development Program of China
Climate action
Openalex Percentile: Top 13%
Soil Carbon and Nitrogen Dynamics
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