甲烷
水槽(地理)
环境科学
甲烷厌氧氧化
土壤水分
气候变化
丰度(生态学)
微生物种群生物学
大气甲烷
生态学
环境化学
全球变化
土壤微生物学
环境变化
碳循环
产甲烷菌
甲烷利用细菌
全球变暖
土壤科学
土壤碳
甲烷排放
碳汇
大气科学
微生物
作者
Wensheng Xiao,Xiaoqi Zhou,Li Cheng,Paul L. E. Bodelier,Gangsheng Wang,Zhifeng Yang,Jizhong Zhou
摘要
ABSTRACT Methanotrophs are key microbial regulators of soil methane (CH 4 ) sinks, but the global impact of their functional gene abundance on CH 4 oxidation remains unquantified. This gap limits the integration of key functional genes abundance parameters (e.g., pmoA ) into soil CH 4 sink model. We integrated meta‐analysis, machine learning, and process‐based modeling to assess the relationship between pmoA gene abundance and soil CH 4 uptake. Our developed Functional Gene Abundance‐Based Methanotrophy Model (FGA‐MeMo) incorporates pmoA as a proxy for CH 4 oxidation capacity, significantly improving model simulations. FGA‐MeMo estimates global upland soil CH 4 uptake at 45.74 ± 0.26 Tg year −1 , which is 56%–58% higher than MeMo model. Under SSP5‐8.5 scenario, this increases to 64.68 ± 0.35 Tg year −1 by 2100, with mid‐ and high‐latitude regions showing enhanced CH 4 oxidation due to greater pmoA abundance. These findings highlight the importance of integrating microbial functional genes into Earth system models for improved CH 4 cycle predictions.
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