首页> 外文期刊>Journal of bacteriology >Functional Characterization of MigA and WapR: Putative Rhamnosyltransferases Involved in Outer Core Oligosaccharide Biosynthesis of Pseudomonas aeruginosa
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Functional Characterization of MigA and WapR: Putative Rhamnosyltransferases Involved in Outer Core Oligosaccharide Biosynthesis of Pseudomonas aeruginosa

机译:MigA和WapR的功能表征:假定的鼠李糖基转移酶参与铜绿假单胞菌的外核寡糖生物合成。

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Pseudomonas aeruginosa lipopolysaccharide (LPS) contains two glycoforms of core oligosaccharide (OS); one form is capped with O antigen through an α-1,3-linked l-rhamnose (l-Rha), while the other is uncapped and contains an α-1,6-linked l-Rha. Two genes in strain PAO1, wapR (PA5000) and migA (PA0705), encode putative glycosyltransferases associated with core biosynthesis. We propose that WapR and MigA are the rhamnosyltransferases responsible for the two linkages of l-Rha to the core. Knockout mutants with mutations in both genes were generated. The wapR mutant produced LPS lacking O antigen, and addition of wapR in trans complemented this defect. The migA mutant produced LPS with a truncated outer core and showed no reactivity to outer core-specific monoclonal antibody (MAb) 5C101. Complementation of this mutant with migA restored reactivity of the LPS to MAb 5C101. Interestingly, LPS from the complemented migA strain was not reactive to MAb 18-19 (specific for the core-plus-one O repeat). This was due to overexpression of MigA in the complemented strain that caused an increase in the proportion of the uncapped core OS, thereby decreasing the amount of the core-plus-one O repeat, indicating that MigA has a regulatory role. The structures of LPS from both mutants were elucidated using nuclear magnetic resonance spectroscopy and mass spectrometry. The capped core of the wapR mutant was found to be truncated and lacked α-1,3-l-Rha. In contrast, uncapped core OS from the migA mutant lacked α-1,6-l-Rha. These results provide evidence that WapR is the α-1,3-rhamnosyltransferase, while MigA is the α-1,6-rhamnosyltransferase.
机译:铜绿假单胞菌脂多糖(LPS)包含核心低聚糖(OS)的两种糖型。一种形式是通过α-1,3-连接的l-鼠李糖(l-Rha)被O抗原封端,而另一种形式是无盖的并且包含α-1,6-连接的l-Rha。 PAO1株中的两个基因 wapR (PA5000)和 migA (PA0705),编码与核心生物合成相关的假定糖基转移酶。我们提出WapR和MigA是鼠李糖基转移酶,负责l-Rha与核心的两个连接。产生了两个基因均具有突变的敲除突变体。 wapR 突变体产生缺乏O抗原的LPS,并且在 trans 中添加 wapR migA 突变体产生带有截短外核的LPS,并且对外核特异性单克隆抗体(MAb)5C101没有反应。该突变体与 migA 的互补可恢复LPS对MAb 5C101的反应性。有趣的是,来自互补型 migA 菌株的LPS对MAb 18-19(对核心加一O重复序列特异性)没有反应。这是由于互补菌株中MigA的过表达,导致未封端的核心OS比例增加,从而减少了核心加一O重复的数量,表明MigA具有调节作用。使用核磁共振波谱和质谱法阐明了两个突变体的LPS的结构。发现 wapR 突变体的带帽核心被截短,缺少α-1,3-l-Rha。相反,来自 migA 突变体的无上限核心操作系统缺乏α-1,6-l-Rha。这些结果提供了证据,表明WapR是α-1,3-鼠李糖基转移酶,而MigA是α-1,6-鼠李糖基转移酶。

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