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DOI10.1007/s13213-018-1421-4
Increased methane concentration alters soil prokaryotic community structure along an artificial pH gradient
Hedenec, Petr1,2,3,4; Angel, Roey5,6; Lin, Qiang5,6; Rui, Junpeng1; Li, Xiangzhen1
发表日期2019
ISSN1590-4261
EISSN1869-2044
卷号69期号:4页码:329-339
英文摘要

Global climate change may have a large impact on increased emission rates of carbon dioxide and methane to total greenhouse gas emissions from terrestrial wetlands. Methane consumption by soil microbiota in alpine wet meadows serves as a biofilter for the methane produced in the waterlogged soil below. Altered pH regimes change microbial community composition and structure by exerting selection pressure on soil microorganisms with different ecological strategies and thus affect greenhouse gas emissions resulting from the metabolic activity of soil microorganisms. However, responses of prokaryotic communities to artificial pH shift under elevated methane concentration remain unclear. In this study, we assessed diversity and relative abundance of soil prokaryotes in an alpine meadow under elevated methane concentration along an artificial pH gradient using laboratory incubation experiments. We established an incubation experiment treated with artificial pH gradient (pH 4.5-8.5). After 3months of incubation, 300ml of methane at a concentration of 20,000ppm was added to stimulate potential methanothrophs in topsoil. Sequencing of 16S rRNA gene indicated increasing of relative abundances of Crenarchaeota, Chloroflexi, Bacteroidetes, and Planctomycetes in soil after addition of methane, while the relative abundances of Actinobacteria and Gemmatimonadetes did not significant change before and after methane treatment. Results of phylogenetic relatedness of soil prokaryotes showed that microbial community is mostly shaped by deterministic factors. Species indicator analysis revealed distinct OTUs among various pH and methane treatments. Network analysis revealed distinct co-occurrence patterns of soil prokaryotic community before and after methane addition, and different correlation patterns among various prokaryotic taxa. Linear regression model revealed significant decrease of methane oxidation along elevated pH gradient. Soil pH constituted a strong environmental filter in species assembly of soil prokaryotic community. Methane oxidation rates decreased significantly with elevated pH. The interactive effects of elevated methane concentration and pH are therefore promising topic for future research.


WOS研究方向Biotechnology & Applied Microbiology ; Microbiology
来源期刊ANNALS OF MICROBIOLOGY
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/95402
作者单位1.Fujian Agr & Forestry Univ, Fujian Prov Key Lab Soil Environm Hlth & Regulat, Coll Resources & Environm, Fuzhou 350002, Peoples R China;
2.Charles Univ Prague, Fac Sci, Inst Environm Studies, Benatska 2, Prague 12844 2, Czech Republic;
3.Charles Univ Prague, Fac Sci, SoWa Res Infrastruct, Benatska 2, Prague 12844 2, Czech Republic;
4.Univ Neuchatel, Lab Soil Biodivers, Rue Emile Argand 11, Neuchatel, Switzerland;
5.Czech Acad Sci, Ctr Biol, SoWa Res Infrastruct, Sadkach 702-7, Ceske Budejovice 37005, Czech Republic;
6.Czech Acad Sci, Ctr Biol, Inst Soil Biol, Sadkach 702-7, Ceske Budejovice 37005, Czech Republic
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Hedenec, Petr,Angel, Roey,Lin, Qiang,et al. Increased methane concentration alters soil prokaryotic community structure along an artificial pH gradient[J],2019,69(4):329-339.
APA Hedenec, Petr,Angel, Roey,Lin, Qiang,Rui, Junpeng,&Li, Xiangzhen.(2019).Increased methane concentration alters soil prokaryotic community structure along an artificial pH gradient.ANNALS OF MICROBIOLOGY,69(4),329-339.
MLA Hedenec, Petr,et al."Increased methane concentration alters soil prokaryotic community structure along an artificial pH gradient".ANNALS OF MICROBIOLOGY 69.4(2019):329-339.
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