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Lack of a type-2 glycosyltransferase in the fish pathogen Flavobacterium psychrophilum determines pleiotropic changes and loss of virulence

机译:鱼病原体黄杆菌中缺乏2型糖基转移酶决定多效性变化和毒力丧失

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Flavobacterium psychrophilum is an important fish pathogen, responsible for Cold Water Disease, with a significant economic impact on salmonid farms worldwide. In spite of this, little is known about the bacterial physiology and pathogenesis mechanisms, maybe because it is difficult to manipulate, being considered a fastidious microorganism. Mutants obtained using a Tn4351 transposon were screened in order to identify those with alteration in colony morphology, colony spreading and extracellular proteolytic activity, amongst other phenotypes. A F. psychrophilum mutant lacking gliding motility showed interruption of the FP1638 locus that encodes a putative type-2 glycosyltransferase (from here on referred to as fpgA gene, Flavobacterium psychrophilum glycosyltransferase). Additionally, the mutant also showed a decrease in the extracellular proteolytic activity as a consequence of down regulation in the fpgA mutant background of the fpp2-fpp1 operon promoter, responsible for the major extracellular proteolytic activity of the bacterium. The protein glycosylation profile of the parental strain showed the presence of a 22?kDa glycosylated protein which is lost in the mutant. Complementation with the fpgA gene led to the recovery of the wild-type phenotype. LD50 experiments in the rainbow trout infection model show that the mutant was highly attenuated. The pleiotropic phenotype of the mutant demonstrated the importance of this glycosyltranferase in the physiology and virulence of the bacterium. Moreover, the fpgA mutant strain could be considered a good candidate for the design of an attenuated vaccine.
机译:精神黄杆菌是重要的鱼类病原体,与冷水病有关,对全世界的鲑鱼养殖场产生重大经济影响。尽管如此,人们对细菌的生理机制和发病机理知之甚少,也许是因为很难操作,被认为是一种难养的微生物。筛选使用Tn4351转座子获得的突变体,以鉴定在其他表型中具有菌落形态,菌落扩散和细胞外蛋白水解活性改变的突变体。缺乏滑动运动能力的嗜热镰刀菌突变体显示FP1638位点的中断,该位点编码一个假定的2型糖基转移酶(从此处称为fpgA基因,嗜热黄杆菌糖基转移酶)。此外,该突变体还显示出胞外蛋白水解活性降低,这是由于负责细菌主要胞外蛋白水解活性的fpp2-fpp1操纵子启动子的fpgA突变体背景下调所致。亲本菌株的蛋白质糖基化谱显示存在22?kDa糖基化蛋白,该蛋白在突变体中丢失。与fpgA基因的互补导致野生型表型的恢复。虹鳟感染模型的LD 50 实验表明该突变体高度减毒。突变体的多效性表型证明了该糖基转移酶在细菌的生理和毒力中的重要性。此外,可以将fpgA突变株视为减毒疫苗设计的良好候选者。

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