Jiangsu Provincial Key Lab of Solid Organic Waste Utilization, Jiangsu Collaborative Innovation Center of Solid Organic Wastes, Nanjing Agricultural University, Nanjing 210095, Jiangsu, P.R. China.
Key Laboratory of Microbial Resources Collection and Preservation, Ministry of Agriculture, Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing 100081, P.R. China.
Mol Plant Microbe Interact. 2022 Jan;35(1):64-72. doi: 10.1094/MPMI-09-21-0234-R. Epub 2021 Dec 17.
Probiotic colonization of plant root surfaces has been reported to improve its beneficial effect. Chemotaxis, adhesion, aggregation, and biofilm formation are the four steps of root colonization by plant growth-promoting rhizobacteria (PGPRs). Compared with the other three well-studied processes, adhesion of PGPRs is less known. In this study, using mutant strains deleted for potential adhesin genes in PGPR strain SQR9, adherence to both cucumber root surface and abiotic surface by those strains was evaluated. Results showed that deletion mutations Δ, Δ, Δ, Δ, and Δ reduced the adhesion to root surfaces, while, among them, only Δ had significant defects in adhesion to abiotic surfaces (glass and polystyrene). In addition, SQR9 mutants defective in adhesion to root surfaces showed a deficiency in rhizosphere colonization. Among the encoded proteins, FliD and YhaN played vital roles in root adhesion. This research systematically explored the potential adhesins in a well-studied PGPR strain and also indicated that adhesion progress was required for root colonization, which will help to enhance rhizosphere colonization and beneficial function of PGPRs in agricultural production.[Formula: see text] Copyright © 2021 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.
植物根表面的益生菌定植被报道可以提高其有益效果。趋化性、黏附、聚集和生物膜形成是植物促生根际细菌(PGPR)定植根的四个步骤。与其他三个研究充分的过程相比,PGPR 的黏附作用知之甚少。在这项研究中,使用 PGPR 菌株 SQR9 中潜在黏附素基因缺失的突变株,评估了这些菌株对黄瓜根表面和非生物表面的黏附作用。结果表明,缺失突变体 Δ、Δ、Δ、Δ 和 Δ 减少了对根表面的黏附,而其中只有 Δ 对非生物表面(玻璃和聚苯乙烯)的黏附有显著缺陷。此外,对根表面黏附缺陷的 SQR9 突变体在根际定殖中表现出缺陷。在编码的蛋白质中,FliD 和 YhaN 在根黏附中起关键作用。本研究系统地探索了一种研究充分的 PGPR 菌株中的潜在黏附素,并表明黏附过程是根定植所必需的,这将有助于增强 PGPR 在农业生产中的根际定殖和有益功能。