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Integrated network analysis reveals the importance of microbial interactions for maize growth
by
Delong Meng
, Liu, Xueduan
, Yin, Huaqun
, Jiemeng Tao
, Liang, Yili
, Xiao, Yunhua
, Li, Juan
, Chong, Qin
, Gu, Yabing
, Liu, Zhenghua
in
Biological activity
/ Complexity
/ Corn
/ Crop yield
/ Fertilization
/ Manures
/ Matrix theory
/ Metagenomics
/ Microbial activity
/ Microorganisms
/ Network analysis
/ Networks
/ Plant growth
2018
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Integrated network analysis reveals the importance of microbial interactions for maize growth
by
Delong Meng
, Liu, Xueduan
, Yin, Huaqun
, Jiemeng Tao
, Liang, Yili
, Xiao, Yunhua
, Li, Juan
, Chong, Qin
, Gu, Yabing
, Liu, Zhenghua
in
Biological activity
/ Complexity
/ Corn
/ Crop yield
/ Fertilization
/ Manures
/ Matrix theory
/ Metagenomics
/ Microbial activity
/ Microorganisms
/ Network analysis
/ Networks
/ Plant growth
2018
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Integrated network analysis reveals the importance of microbial interactions for maize growth
by
Delong Meng
, Liu, Xueduan
, Yin, Huaqun
, Jiemeng Tao
, Liang, Yili
, Xiao, Yunhua
, Li, Juan
, Chong, Qin
, Gu, Yabing
, Liu, Zhenghua
in
Biological activity
/ Complexity
/ Corn
/ Crop yield
/ Fertilization
/ Manures
/ Matrix theory
/ Metagenomics
/ Microbial activity
/ Microorganisms
/ Network analysis
/ Networks
/ Plant growth
2018
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Integrated network analysis reveals the importance of microbial interactions for maize growth
Journal Article
Integrated network analysis reveals the importance of microbial interactions for maize growth
2018
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Overview
milk*Microbes play a critical role in soil global biogeochemical circulation and microbe–microbe interactions have also evoked enormous interests in recent years. Utilization of green manures can stimulate microbial activity and affect microbial composition and diversity. However, few studies focus on the microbial interactions or detect the key functional members in communities. With the advances of metagenomic technologies, network analysis has been used as a powerful tool to detect robust interactions between microbial members. Here, random matrix theory-based network analysis was used to investigate the microbial networks in response to four different green manure fertilization regimes (Vicia villosa, common vetch, milk vetch, and radish) over two growth cycles from October 2012 to September 2014. The results showed that the topological properties of microbial networks were dramatically altered by green manure fertilization. Microbial network under milk vetch amendment showed substantially more intense complexity and interactions than other fertilization systems, indicating that milk vetch provided a favorable condition for microbial interactions and niche sharing. The shift of microbial interactions could be attributed to the changes in some major soil traits and the interactions might be correlated to plant growth and production. With the stimuli of green manures, positive interactions predominated the network eventually and the network complexity was in consistency with maize productivity, which suggested that the complex soil microbial networks might benefit to plants rather than simple ones, because complex networks would hold strong the ability to cope with environment changes or suppress soil-borne pathogen infection on plants. In addition, network analyses discerned some putative keystone taxa and seven of them had directly positive interactions with maize yield, which suggested their important roles in maintaining environmental functions and in improving plant growth.
Publisher
Springer Nature B.V
Subject
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