Literature DB >> 31003986

Microbial Network and Soil Properties Are Changed in Bacterial Wilt-Susceptible Soil.

Gaofu Qi1, Gaoqiang Ma1, Shu Chen1, Changchun Lin1, Xiuyun Zhao2.   

Abstract

Bacterial wilt disease is a devastating disease of crops, which leads to huge economic loss worldwide. It is hypothesized that the occurrence of bacterial wilt may be related to changes in soil chemical properties and microbial interactions. In this study, we compared the soil chemical properties and microbial network structures of a healthy soil (HS) and a bacterial wilt-susceptible soil (BWS). The contents of available nitrogen, potassium, and phosphorus and the soil pH in the BWS were significantly lower than those in the HS. BWS showed nutrient deficiency and acidification in comparison with the HS. The structure and composition of the BWS network were quite different from those of the HS network. The BWS network had fewer modules and edges and lower connectivity than the HS network. The HS network contained more interacting species, more key microorganisms, and better high-order organization and thus was more complex and stable than the BWS network. Most nodes and module memberships were unshared by the two networks, while the ones that were shared showed different topological roles. Some generalists in the HS network became specialists in the BWS network, indicating that the topological roles of microbes were changed and key microorganisms were shifted in the BWS. In summary, the composition and structure of the microbial network of the BWS were different from that of the HS. Many microbial network connections were missing in the BWS, which most likely provided conditions leading to higher rates of bacterial wilt disease.IMPORTANCE Bacterial wilt disease is caused by the pathogen Ralstonia solanacearum and is a widespread devastating soilborne disease leading to huge economic losses worldwide. The soil microbial community is crucial to the capacity of soils to suppress soilborne diseases through complex interactions. Network analysis can effectively explore these complex interactions. In this study, we used a random matrix theory (RMT)-based network approach to investigate the changes in microbial network and associated microbial interactions in a bacterial wilt-susceptible soil (BWS) in comparison to a healthy soil (HS). We found that the structure and composition of the microbial network in BWSs were quite different from those of the HS. The BWS network had fewer modules, edges, and key microorganisms and lower connectivity than the HS network. In the BWSs, apparently the topological role of microbes was changed and key microorganisms were shifted to specialists.
Copyright © 2019 American Society for Microbiology.

Entities:  

Keywords:  Ralstonia solanacearumzzm321990; bacterial wilt-susceptible soil; healthy soil; microbial networks; soil chemical properties

Year:  2019        PMID: 31003986      PMCID: PMC6581179          DOI: 10.1128/AEM.00162-19

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  7 in total

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Authors:  Lei Shi; Pinhua Xia; Tao Lin; Guoqing Li; Tianyou Wang; Xin Du
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Review 2.  From diversity to complexity: Microbial networks in soils.

Authors:  Ksenia Guseva; Sean Darcy; Eva Simon; Lauren V Alteio; Alicia Montesinos-Navarro; Christina Kaiser
Journal:  Soil Biol Biochem       Date:  2022-06       Impact factor: 8.546

3.  Microbial Diversity Characteristics of Areca Palm Rhizosphere Soil at Different Growth Stages.

Authors:  Siyuan Ma; Yubin Lin; Yongqiang Qin; Xiaoping Diao; Peng Li
Journal:  Plants (Basel)       Date:  2021-12-09

4.  Deciphering the microbial diversity associated with healthy and wilted Paeonia suffruticosa rhizosphere soil.

Authors:  Manman Jia; Xin Sun; Man Chen; Shuang Liu; Jinxing Zhou; Xiawei Peng
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5.  Biocontrol potential of Bacillus velezensis EM-1 associated with suppressive rhizosphere soil microbes against tobacco bacterial wilt.

Authors:  Xiaona Sui; Xiaobin Han; Jianmin Cao; Yiqiang Li; Yuan Yuan; Jianyu Gou; Yanfen Zheng; Chen Meng; Chengsheng Zhang
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6.  Outbreaks of Root Rot Disease in Different Aged American Ginseng Plants Are Associated With Field Microbial Dynamics.

Authors:  Li Ji; Fahad Nasir; Lei Tian; Jingjing Chang; Yu Sun; Jianfeng Zhang; Xiujun Li; Chunjie Tian
Journal:  Front Microbiol       Date:  2021-06-25       Impact factor: 5.640

7.  Comparison of bacterial communities in soil samples with and without tomato bacterial wilt caused by Ralstonia solanacearum species complex.

Authors:  Ying Zhang; Anna Hu; Jianuan Zhou; Wenfei Zhang; Peng Li
Journal:  BMC Microbiol       Date:  2020-04-14       Impact factor: 3.605

  7 in total

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