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Soil Ecology Letters

ISSN 2662-2289

ISSN 2662-2297(Online)

Soil Ecology Letters  2021, Vol. 3 Issue (1): 42-51   https://doi.org/10.1007/s42832-020-0057-z
  本期目录
Root exudates mediate plant defense against foliar pathogens by recruiting beneficial microbes
Tao Wen1, Mengli Zhao1, Jun Yuan1(), George A. Kowalchuk2, Qirong Shen1
1. Jiangsu Provincial Key Lab for Organic Solid Waste Utilization, National Engineering Research Center for Organic-based Fertilizers, Jiangsu Collaborative Innovation Center for Solid Organic Waste Resource Utilization, Nanjing Agricultural University, Nanjing 210095, China
2. Ecology and Biodiversity Group, Department of Biology, Institute of Environmental Biology, Utrecht University, Padualaan 8, 3584 CH Utrecht, The Netherlands
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Abstract

•Ÿ Long-chain fatty acids and amino acids application could form foliar disease resistant-soil microbial community

•Ÿ Population of Pseudomonas was enriched by long-chain fatty acids and amino acids application

•Ÿ The enriched Pseudomonas could help plant resistant foliar pathogens.

Plants are capable of releasing specific root exudates to recruit beneficial rhizosphere microbes upon foliar pathogen invasion attack, including long-chain fatty acids, amino acids, short-chain organic acids and sugars. Although long-chain fatty acids and amino acids application have been linked to soil legacy effects that improve future plant performance in the presence of the pathogen, the precise mechanisms involved are to a large extent still unknown. Here, we conditioned soils with long-chain fatty acids and amino acids application (L+ A) or short-chain organic acids and sugars (S+ S) to examine the direct role of such exudates on soil microbiome structure and function. The L+ A treatment recruited higher abundances of Proteobacteria which were further identified as members of the genera Sphingomonas, Pseudomonas, Roseiflexus, and Flavitalea. We then isolated the enriched bacterial strains from these groups, identifying ten Pseudomonas strains that were able to help host plant to resist foliar pathogen infection. Further investigation showed that the L+ A treatment resulted in growth promotion of these Pseudomonas strains. Collectively, our data suggest that long-chain fatty acids and amino acids stimulated by foliar pathogen infection can recruit specific Pseudomonas populations that can help protect the host plant or future plant generations.

Key wordsFoliar pathogen resistance    Pseudomonas    Recruitment    Root exudates
收稿日期: 2020-02-29      出版日期: 2021-02-05
Corresponding Author(s): Jun Yuan   
 引用本文:   
. [J]. Soil Ecology Letters, 2021, 3(1): 42-51.
Tao Wen, Mengli Zhao, Jun Yuan, George A. Kowalchuk, Qirong Shen. Root exudates mediate plant defense against foliar pathogens by recruiting beneficial microbes. Soil Ecology Letters, 2021, 3(1): 42-51.
 链接本文:  
https://academic.hep.com.cn/sel/CN/10.1007/s42832-020-0057-z
https://academic.hep.com.cn/sel/CN/Y2021/V3/I1/42
Fig.1  
Fig.2  
Fig.3  
Isolates Similaritya (ASV2) Similaritya (ASV8)
P14 100% 82%
P34 100% 82%
P90 100% 85%
P69 100% 84%
P30 100% 82%
P17 100% 81%
P103 100% 80%
P29 100% 80%
P89 100% 83%
P137 100% 86%
Tab.1  
Fig.4  
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