首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The tetrameric structure of sialic acid–synthesizing UDP-GlcNAc 2-epimerase from Acinetobacter baumannii: A comparative study with human GNE
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The tetrameric structure of sialic acid–synthesizing UDP-GlcNAc 2-epimerase from Acinetobacter baumannii: A comparative study with human GNE

机译:鲍曼不动杆菌唾液酸合成UDP-GlcNAc 2-表异构酶的四聚体结构:与人GNE的比较研究

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摘要

Sialic acid presentation on the cell surface by some pathogenic strains of bacteria allows their escape from the host immune system. It is one of the major virulence factors. Bacterial biosynthesis of sialic acids starts with the conversion of UDP-GlcNAc to UDP and ManNAc by a hydrolyzing 2-epimerase. Here, we present the crystal structure of this enzyme, named NeuC, from Acinetobacter baumannii. The protein folds into two Rossmann-like domains and forms dimers and tetramers as does the epimerase part of the bifunctional UDP-GlcNAc 2-epimerase/ManNAc kinase (GNE). In contrast to human GNE, which showed only the closed conformation, the NeuC crystals contained both open and closed protomers in each dimer. Substrate soaking changed the space group from C2221 to P212121. In addition to UDP, an intermediate-like ligand was seen bound to the closed protomer. The UDP-binding mode in NeuC was similar to that in GNE, although a few side chains were rotated away. NeuC lacks the CMP-Neu5Ac–binding site for allosteric inhibition of GNE. However, the two enzymes as well as other NeuC homologues (but not SiaA from Neisseria meningitidis) appear to be common in tetrameric organization. The revised two-base catalytic mechanism may involve His-125 (Glu-134 in GNE), as suggested by mutant activity analysis.
机译:某些病原性细菌在细胞表面呈递的唾液酸,使它们从宿主免疫系统中逸出。它是主要的毒力因子之一。唾液酸的细菌生物合成始于通过水解2-表异构酶将UDP-GlcNAc转化为UDP和ManNAc。在这里,我们介绍了这种酶的晶体结构,命名为NeuC,来自鲍曼不动杆菌。该蛋白质折叠成两个Rossmann样结构域,并形成双聚体和四聚体,双功能UDP-GlcNAc 2-epimerase / ManNAc激酶(GNE)的差向异构酶部分也是如此。与仅显示闭合构象的人GNE相反,NeuC晶体在每个二聚体中都包含开放和封闭的启动子。基板浸泡将空间组从C2221更改为P212121。除UDP外,还可以看到类似中间物的配体与封闭的前列腺素结合。 NeuC中的UDP绑定模式类似于GNE中的UDP绑定模式,尽管一些侧链被旋转掉了。 NeuC缺乏对GNE的变构抑制作用的CMP-Neu5Ac结合位点。但是,这两种酶以及其他NeuC同源物(但不是脑膜炎奈瑟氏球菌的SiaA)在四聚体组织中很常见。突变活性分析表明,修改后的两碱催化机制可能涉及His-125(GNE中的Glu-134)。

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