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首页> 外文期刊>Biochimica et Biophysica Acta. Molecular and cell biology of Lipids >Altered lipid A structures and polymyxin hypersensitivity of Rhizobium etli mutants lacking the LpxE and LpxF phosphatases.
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Altered lipid A structures and polymyxin hypersensitivity of Rhizobium etli mutants lacking the LpxE and LpxF phosphatases.

机译:缺少LpxE和LpxF磷酸酶的根瘤菌等突变体的脂质A结构改变和多粘菌素超敏性。

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The lipid A of Rhizobium etli, a nitrogen-fixing plant endosymbiont, displays significant structural differences when compared to that of Escherichia coli. An especially striking feature of R. etli lipid A is that it lacks both the 1- and 4'-phosphate groups. The 4'-phosphate moiety of the distal glucosamine unit is replaced with a galacturonic acid residue. The dephosphorylated proximal unit is present as a mixture of the glucosamine hemiacetal and an oxidized 2-aminogluconate derivative. Distinct lipid A phosphatases directed to the 1 or the 4'-positions have been identified previously in extracts of R. etli and Rhizobium leguminosarum. The corresponding structural genes, lpxE and lpxF, respectively, have also been identified. Here, we describe the isolation and characterization of R. etli deletion mutants in each of these phosphatase genes and the construction of a double phosphatase mutant. Mass spectrometry confirmed that the mutant strains completely lacked the wild-type lipid A species and accumulated the expected phosphate-containing derivatives. Moreover, radiochemical analysis revealed that phosphatase activity was absent in membranes prepared from the mutants. Our results indicate that LpxE and LpxF are solely responsible for selectively dephosphorylating the lipid A molecules of R. etli. All the mutant strains showed an increased sensitivity to polymyxin relative to the wild-type. However, despite the presence of altered lipid A species containing one or both phosphate groups, all the phosphatase mutants formed nitrogen-fixing nodules on Phaseolus vulgaris. Therefore, the dephosphorylation of lipid A molecules in R. etli is not required for nodulation but may instead play a role in protecting the bacteria from cationic antimicrobial peptides or other immune responses of plants.
机译:与大肠杆菌相比,固氮植物内共生体的根瘤菌脂质A具有明显的结构差异。 R. etli脂质A的一个特别醒目的特征是它同时缺少1和4'-磷酸基团。远端葡糖胺单元的4'-磷酸部分被半乳糖醛酸残基取代。脱磷酸的近端单元以氨基葡萄糖半缩醛和氧化的2-氨基葡萄糖酸酯衍生物的混合物形式存在。先前已经在R. etli和豆科根瘤菌的提取物中鉴定了针对1或4'-位的不同脂质A磷酸酶。还分别鉴定了相应的结构基因lpxE和lpxF。在这里,我们描述了在这些磷酸酶基因的每一个中R. etli缺失突变体的分离和特征以及双磷酸酶突变体的构建。质谱证实突变菌株完全缺乏野生型脂质A种类,并积累了预期的含磷酸盐的衍生物。此外,放射化学分析表明由突变体制备的膜中不存在磷酸酶活性。我们的结果表明,LpxE和LpxF仅负责选择性地使R. etli的脂质A分子脱磷酸。相对于野生型,所有突变菌株均显示出对多粘菌素的敏感性增加。然而,尽管存在含有一个或两个磷酸基团的脂质A物种的改变,但所有磷酸酶突变体均在菜豆上形成了固氮根瘤。因此,结瘤不需要脂质中的脂质A分子去磷酸化,而是可以起到保护细菌免受阳离子抗微生物肽或植物其他免疫反应的作用。

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