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枯草芽孢杆菌BsE1的聚γ-谷氨酸产量在其运动性及对禾谷镰刀菌的生物防治中具有积极作用。

Poly-γ-glutamic acid productivity of Bacillus subtilis BsE1 has positive function in motility and biocontrol against Fusarium graminearum.

作者信息

Wang Luyao, Wang Ning, Mi Dandan, Luo Yuming, Guo Jianhua

机构信息

Department of Plant Pathology, College of Plant Protection, Nanjing Agricultural University; Jiangsu Collaborative Innovation Center of Regional Modern Agriculture and Environmental Protection; Key Laboratory of Integrated Management of Crop Diseases and Pests (Nanjing Agricultural University), Ministry of Education, Nanjing, 210095, P. R. China.

Jiangsu Collaborative Innovation Center of Regional Modern Agriculture and Environmental Protection, Jiangsu Key Laboratory for Eco-Agricultural Biotechnology around Hongze Lake, School of Life Science, Huaiyin Normal University, Huaian, 223300, P. R. China.

出版信息

J Microbiol. 2017 Jul;55(7):554-560. doi: 10.1007/s12275-017-6589-y. Epub 2017 Jun 30.

Abstract

In this study, we investigate the relationship between γ-PGA productivity and biocontrol capacity of Bacillus subtilis BsE1; one bacterial isolate displayed 62.14% biocontrol efficacy against Fusarium root rot. The γ-PGA yield assay, motility assay, wheat root colonization assay, and biological control assay were analysed in different γ-PGA yield mutants of BsE1. The pgsB (PGA-synthase-CapB gene) deleted mutant of BsE1 reduced γ-PGA yield and exhibited apparent decline of in vitro motile ability. Deletion of pgsB impaired colonizing capacity of BsE1 on wheat root in 30 days, also lowered biocontrol efficacies from 62.08% (wild type BsE1) to 14.22% in greenhouse experiment against Fusarium root rot. The knockout of pgdS and ggt (genes relate to two γ-PGA degrading enzymes) on BsE1, leads to a considerable improvement in polymer yield and biocontrol efficacy, which attains higher level compared with wild type BsE1. Compared with ΔpgsB mutant, defense genes related to reactive oxygen species (ROS) and phytoalexin expressed changes by notable levels on wheat roots treated with BsE1, demonstrating the functional role γ-PGA plays in biocontrol against Fusarium root rot. γ-PGA is not only important to the motile and plant root colonization ability of BsE1, but also essential to the biological control performed by BsE1 against Fusarium root rot. Our goal in this study is to reveals a new perspective of BCAs screening on bacterial isolates, without good performance during pre-assays of antagonism ability.

摘要

在本研究中,我们调查了枯草芽孢杆菌BsE1的γ-聚谷氨酸(γ-PGA)产量与生物防治能力之间的关系;一种细菌分离株对镰刀菌根腐病表现出62.14%的生物防治效果。对BsE1不同γ-PGA产量突变体进行了γ-PGA产量测定、运动性测定、小麦根定殖测定和生物防治测定。BsE1的pgsB(PGA合成酶-CapB基因)缺失突变体降低了γ-PGA产量,并表现出体外运动能力明显下降。pgsB的缺失在30天内损害了BsE1在小麦根上的定殖能力,在温室试验中,对镰刀菌根腐病的生物防治效果也从62.08%(野生型BsE1)降至14.22%。在BsE1上敲除pgdS和ggt(与两种γ-PGA降解酶相关的基因),导致聚合物产量和生物防治效果显著提高,与野生型BsE1相比达到更高水平。与ΔpgsB突变体相比,在用BsE1处理的小麦根上,与活性氧(ROS)和植保素相关的防御基因表达有显著变化,证明了γ-PGA在防治镰刀菌根腐病生物防治中的功能作用。γ-PGA不仅对BsE1的运动性和植物根定殖能力很重要,而且对BsE1防治镰刀菌根腐病的生物防治也至关重要。我们在本研究中的目标是揭示对拮抗能力预试验中表现不佳的细菌分离株进行生防菌筛选的新视角。

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