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植物-微生物相互作用:挖掘本土解淀粉芽孢杆菌 WS-10 对烟草青枯病和根际微生物群落的影响。

Plant-Microbe Interaction: Mining the Impact of Native Bacillus amyloliquefaciens WS-10 on Tobacco Bacterial Wilt Disease and Rhizosphere Microbial Communities.

机构信息

College of Resources and Environment, Yunnan Agricultural Universitygrid.410696.c, Kunming, Yunnan, China.

State Key Laboratory for Conservation and Utilization of Bio-Resources in Yunnan, Yunnan Agricultural Universitygrid.410696.c, Kunming, Yunnan, China.

出版信息

Microbiol Spectr. 2022 Aug 31;10(4):e0147122. doi: 10.1128/spectrum.01471-22. Epub 2022 Aug 1.

Abstract

Ralstonia solanacearum, the causative agent of bacterial wilt disease, has been a major threat to tobacco production globally. Several control methods have failed. Thus, it is imperative to find effective management for this disease. The biocontrol agent Bacillus amyloliquefaciens WS-10 displayed a significant control effect due to biofilm formation, and secretion of hydrolytic enzymes and exopolysaccharides. In addition, strain WS-10 can produce antimicrobial compounds, which was confirmed by the presence of genes encoding antimicrobial lipopeptides (, , , and ) and polyketides (, , , and ). Strain WS-10 successfully colonized tobacco plant roots and rhizosphere soil and suppressed the incidence of bacterial wilt disease up to 72.02% by reducing the R. solanacearum population dynamic in rhizosphere soil. Plant-microbe interaction was considered a key driver of disease outcome. To further explore the impact of strain WS-10 on rhizosphere microbial communities, V3-V4 and ITS1 variable regions of 16S and ITS rRNA were amplified, respectively. Results revealed that strain WS-10 influences the rhizosphere microbial communities and dramatically changed the diversity and composition of rhizosphere microbial communities. Interestingly, the relative abundance of genus significantly decreased when treated with strain WS-10. A complex microbial co-occurrence network was present in a diseased state, and the introduction of strain WS-10 significantly changed the structure of rhizosphere microbiota. This study suggests that strain WS-10 can be used as a novel biocontrol agent to attain sustainability in disease management due to its intense antibacterial activity, efficient colonization in the host plant, and ability to transform the microbial community structure toward a healthy state. The plant rhizosphere acts as the first line of defense against the invasion of pathogens. The perturbation in the rhizosphere microbiome is directly related to plant health and disease development. The introduction of beneficial microorganisms in the soil shifted the rhizosphere microbiome, induced resistance in plants, and suppressed the incidence of soilborne disease. sp. is widely used as a biocontrol agent against soilborne diseases due to its ability to produce broad-spectrum antimicrobial compounds and colonization with the host plant. In our study, we found that the application of native Bacillus amyloliquefaciens WS-10 significantly suppressed the incidence of tobacco bacterial wilt disease by shifting the rhizosphere microbiome and reducing the interaction between rhizosphere microorganisms and bacterial wilt pathogen.

摘要

青枯雷尔氏菌是细菌性萎蔫病的病原体,已成为全球烟草生产的主要威胁。几种控制方法均已失败。因此,迫切需要找到有效的疾病管理方法。生防菌解淀粉芽孢杆菌 WS-10 由于生物膜的形成以及水解酶和胞外多糖的分泌,显示出显著的控制效果。此外,菌株 WS-10 可以产生抗菌化合物,这一点通过存在编码抗菌脂肽( 、 、 、 )和聚酮化合物( 、 、 、 )的基因得到证实。菌株 WS-10 成功定殖于烟草植物根和根际土壤,并通过减少根际土壤中青枯雷尔氏菌种群动态,将细菌性萎蔫病的发病率抑制至 72.02%。植物-微生物相互作用被认为是疾病结果的关键驱动因素。为了进一步探索菌株 WS-10 对根际微生物群落的影响,分别扩增了 16S 和 ITS rRNA 的 V3-V4 和 ITS1 可变区。结果表明,菌株 WS-10 影响根际微生物群落,并显著改变了根际微生物群落的多样性和组成。有趣的是,当用菌株 WS-10 处理时,属的相对丰度显著降低。在患病状态下存在复杂的微生物共同发生网络,引入菌株 WS-10 显著改变了根际微生物群的结构。本研究表明,由于其强烈的抗菌活性、在宿主植物中的有效定植以及改变微生物群落结构向健康状态的能力,菌株 WS-10 可用作新型生防剂,以实现疾病管理的可持续性。植物根际是抵御病原体入侵的第一道防线。根际微生物组的扰动与植物健康和疾病发展直接相关。土壤中有益微生物的引入改变了根际微生物组,诱导了植物的抗性,并抑制了土传病害的发生。 sp. 由于其产生广谱抗菌化合物和与宿主植物定植的能力而被广泛用作防治土传病害的生防剂。在我们的研究中,我们发现,应用本地解淀粉芽孢杆菌 WS-10 通过改变根际微生物组和减少根际微生物与细菌性萎蔫病病原体之间的相互作用,显著抑制了烟草细菌性萎蔫病的发生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06da/9430121/30e303cc0ae8/spectrum.01471-22-f009.jpg

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