Kolton Max, Frenkel Omer, Elad Yigal, Cytryn Eddie
Mol Plant Microbe Interact. 2014 Sep;27(9):1005-13. doi: 10.1094/MPMI-03-14-0067-R.
Members of the Flavobacterium genus are often highly abundant in the rhizosphere. Nevertheless, the physiological characteristics associated with their enhanced rhizosphere competence are currently an enigma. Flavobacteria possess a unique gliding-motility complex that is tightly associated with a recently characterized Bacteroidetes-specific type IX protein secretion system, which distinguishes them from the rest of the rhizosphere microbiome. We hypothesize that proper functionality of this complex may confer a competitive advantage in the rhizosphere. To test this hypothesis, we constructed mutant and complement root-associated flavobacterial variants with dysfunctional secretion and gliding motility, and tested them in a series of in planta experiments. These mutants demonstrated significantly lower rhizosphere persistence (approximately 10-fold), plant root colonization (approximately fivefold), and seed adhesion capacity (approximately sevenfold) than the wild-type strains. Furthermore, the biocontrol capacity of the mutant strain toward foliar-applied Clavibacter michiganensis was significantly impaired relative to the wild-type strain, suggesting a role of the gliding and secretion complex in plant protection. Collectively, these results provide an initial link between the high abundance of flavobacteria in the rhizosphere and their unique physiology, indicating that the flavobacterial gliding-motility and secretion complex may play a central role in root colonization and plant defense.
黄杆菌属成员在根际通常含量很高。然而,目前与其增强的根际竞争力相关的生理特征仍是个谜。黄杆菌拥有独特的滑行运动复合体,该复合体与最近鉴定出的拟杆菌门特异性IX型蛋白质分泌系统紧密相关,这使它们有别于根际微生物群的其他成员。我们推测,该复合体的正常功能可能在根际赋予竞争优势。为了验证这一假设,我们构建了分泌和滑行运动功能失调的突变型和互补型根际相关黄杆菌变体,并在一系列植物体内实验中对它们进行了测试。这些突变体在根际的持久性(约为野生型菌株的十分之一)、植物根部定殖能力(约为野生型菌株的五分之一)和种子黏附能力(约为野生型菌株的七分之一)均显著低于野生型菌株。此外,与野生型菌株相比,突变菌株对叶面喷施的密执安棒杆菌的生防能力显著受损,这表明滑行和分泌复合体在植物保护中发挥作用。总体而言,这些结果初步揭示了根际中黄杆菌的高丰度与其独特生理特征之间的联系,表明黄杆菌的滑行运动和分泌复合体可能在根部定殖和植物防御中发挥核心作用。