Response of microbial diversity to C:N:P stoichiometry in fine root and microbial biomass following afforestation

被引:0
作者
Chengjie Ren
Ji Chen
Jian Deng
Fazhu Zhao
Xinhui Han
Gaihe Yang
Xiaogang Tong
Yongzhong Feng
Shelby Shelton
Guangxin Ren
机构
[1] Northwest A&F University,College of Agronomy
[2] The Research Center of Recycle Agricultural Engineering and Technology of Shaanxi Province,Center for Ecological and Environmental Sciences, Key Laboratory for Space Bioscience & Biotechnology
[3] Northwestern Polytechnical University,College of Urban and Environmental Science
[4] Northwest University,College of Natural Resources and Environment
[5] Northwest A&F University,Milken Institute of Public Health
[6] The George Washington University,undefined
来源
Biology and Fertility of Soils | 2017年 / 53卷
关键词
Afforestation; C:N:P stoichiometry; Illumina sequencing; Soil microbial communities;
D O I
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中图分类号
学科分类号
摘要
Soil samples were collected in June and October from areas with three land-use types, i.e., Robinia pseudoacacia L. (RP), Caragana korshinskii Kom. (CK), and abandoned land (AL), of which the former two were afforested areas, whereas the latter was not. These areas were converted from similar farmlands 40 years prior. Illumina sequencing of 16S rRNA gene and fungal ITS gene was used to analyze soil bacterial and fungal diversity. Additionally, plant communities, soil properties, fine root biomass, and C, N, and P levels in fine root and microbial biomass were estimated. Compared to AL, the C:N:P stoichiometry in fine root and microbial biomass in the afforested lands was synchronously changed, especially the N:P ratio. Soil microbial diversities were affected by afforestation and were more related to N:P ratio than C:P and C:N ratios. Moreover, Alpha-proteobacteria, Gamma-proteobacteria, and Bacteroidetes were significantly more abundant in afforested soils than in the AL soil, and the abundances of Actinobacteria, Chloroflexi, Cyanobacteria, and Nitrospirae ranked as AL > RP or CK. For fungal taxa, Ascomycota abundance responded positively to afforestation, whereas Basidiomycota abundance responded negatively. Changes of soil microbial taxa were significantly correlated with the N:P ratio in fine root and microbial biomass, which explained 54.1 and 55% of the total variation in bacterial and fungal taxa, respectively. Thus, our results provide evidence that compositions of soil microbial communities are linked to the N:P ratio in the plant-soil system.
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页码:457 / 468
页数:11
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