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Enhanced soil methane oxidation in both organic layer and topsoil during the succession of subtropical forests
Liu, Junhua1; Xu, Yunjian1; Zhu, Yingmo1; Yin, Wen2; Fan, Danhua3; Yan, Guangxuan4; Raza, Syed Turab1; Lu, Zhiyun5; Chen, Zhe1,6
2023
Source PublicationPROCESS SAFETY AND ENVIRONMENTAL PROTECTION
Volume170Issue:xPages:865-876
Abstract

Although (sub)tropical forests account for 10-20% of the atmospheric methane (CH4) uptake by soils, the study of soil CH4 oxidation rates and the controlling factors during the chronosequences of forest succession remains poorly understood. The objectives of this study were to characterize the vertical distribution patterns and dynamics of CH4 oxidation among the early-, mid-, and late-successional stages of subtropical forests, and to investigate the main drivers of soil CH4 fluxes. Three successional forests soils were collected and the ambient and potential CH4 oxidation rates, the related enzymes as well as the key soil parameters were determined in the laboratory. The soils at mid- and late-successional stages functioned exclusively as a CH4 sink while the soil at early-succesional stage was either a CH4 source or sink. Soil CH4 oxidations showed significant vertical distributions along with the successional gradients. The highest rate of ambient CH4 oxidation was observed in the A-horizon of the mid-successional stage (forest age similar to 100 years), increased by 26-fold compared to the early successional stage, while the highest rate of potential CH4 oxidation was detected in the O-horizon of the late-successional stages (forest age > 300 years), which increased the CH4 oxidation by 29% and 21% respectively compared to the early- and mid-successional stages. Soil CH4 oxidation enhanced with decreasing of soil nitrite and nitrate content but weakened with declining of soil moisture at the successional chronosequence. Collectively, subtropical forests have the potential to increase the soil sink capacity for CH4 oxidation along the successional gradient, and thereby providing the negative feedbacks to ecosystems under climate changing.

KeywordMethane oxidation Forest succession Chronosequence Nitrogen availability Methane monooxygenase activity Subtropical forest
Subject AreaEngineering, Environmental ; Engineering, Chemical
DOI10.1016/j.psep.2022.12.064
Indexed BySCI
Language英语
WOS IDWOS:000915053700001
Citation statistics
Document Type期刊论文
Identifierhttps://ir.xtbg.ac.cn/handle/353005/13362
Collection支撑系统
Affiliation1.Yunnan Univ, Inst Biodivers, Sch Ecol & Environm Sci, Yunnan Key Lab Plant Reprod Adaptat & Evolutionary, Kunming 650504, Yunnan, Peoples R China
2.Yunnan Univ, Key Lab Soil Ecol Hlth Univ Yunnan Prov, Kunming 650500, Peoples R China
3.Serv Ctr Sci & Technol, Meteorol Bur Baoshan, Baoshan 678000, Peoples R China
4.Meteorol Bur Dehong Prefecture, Mangshi 678400, Peoples R China
5.Henan Normal Univ, Sch Environm, Xinxiang 453007, Peoples R China
6.Chinese Acad Sci, Ailaoshan Stn Subtrop Forest Ecosyst Studies, Xishuangbanna Trop Bot Garden, Jingdong 676209, Yunnan, Peoples R China
7.Yunnan Univ, Gewu Bldg, Kunming 650500, Peoples R China
Recommended Citation
GB/T 7714
Liu, Junhua,Xu, Yunjian,Zhu, Yingmo,et al. Enhanced soil methane oxidation in both organic layer and topsoil during the succession of subtropical forests[J]. PROCESS SAFETY AND ENVIRONMENTAL PROTECTION,2023,170(x):865-876.
APA Liu, Junhua.,Xu, Yunjian.,Zhu, Yingmo.,Yin, Wen.,Fan, Danhua.,...&Chen, Zhe.(2023).Enhanced soil methane oxidation in both organic layer and topsoil during the succession of subtropical forests.PROCESS SAFETY AND ENVIRONMENTAL PROTECTION,170(x),865-876.
MLA Liu, Junhua,et al."Enhanced soil methane oxidation in both organic layer and topsoil during the succession of subtropical forests".PROCESS SAFETY AND ENVIRONMENTAL PROTECTION 170.x(2023):865-876.
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