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通过X射线晶体学研究沙门氏菌噬菌体P22与其O抗原受体的相互作用。

Interaction of Salmonella phage P22 with its O-antigen receptor studied by X-ray crystallography.

作者信息

Steinbacher S, Miller S, Baxa U, Weintraub A, Seckler R

机构信息

Max-Planck-Institut für Biochemie, Abteilung für Strukturforschung, Martinsried, Germany.

出版信息

Biol Chem. 1997 Mar-Apr;378(3-4):337-43. doi: 10.1515/bchm.1997.378.3-4.337.

DOI:10.1515/bchm.1997.378.3-4.337
PMID:9165091
Abstract

The O-antigenic repeating units of the Salmonella cell surface lipopolysaccharides (serotypes A, B and D1) serve as receptors for phage P22. This initial binding step is mediated by the tailspike protein (TSP), which is present in six copies on the base plate of the phage. In addition to the binding activity, TSP also displays a low endoglycolytic activity, cleaving the alpha(1,3)-O-glycosidic bond between rhamnose and galactose of the O-antigenic repeats. The crystal structure of TSP in complex with receptor fragments allowed to identify the receptor binding site for the octasaccharide product of the enzymatic action of TSP on delipidated LPS and the active site consisting of Asp392, Asp395 and Glu359. The structure comprises a large right-handed parallel beta-helix of 13 turns. These fold independently in the trimer, whereas the N-terminus forms a cap-like structure and the C-terminal parts of the three polypeptide strands merge to a single common domain. In addition, TSP has served as model system for the folding of large, multisubunit proteins. Its folding pathway is influenced by a large number of point mutations, classified as lethal, temperature sensitive or general suppressor mutations, which influence the partitioning between aggregation and the productive folding pathway.

摘要

沙门氏菌细胞表面脂多糖(血清型A、B和D1)的O抗原重复单元可作为噬菌体P22的受体。这一初始结合步骤由尾刺蛋白(TSP)介导,该蛋白以六个拷贝的形式存在于噬菌体的基板上。除了结合活性外,TSP还表现出较低的内切糖酶活性,可切割O抗原重复序列中鼠李糖和半乳糖之间的α(1,3)-O-糖苷键。TSP与受体片段复合物的晶体结构有助于确定TSP对脱脂LPS酶促作用的八糖产物的受体结合位点以及由Asp392、Asp395和Glu359组成的活性位点。该结构包含一个由13个螺旋组成的大型右手平行β-螺旋。这些螺旋在三聚体中独立折叠,而N端形成帽状结构,三条多肽链的C端部分合并为一个共同结构域。此外,TSP已成为大型多亚基蛋白折叠的模型系统。其折叠途径受到大量点突变的影响,这些点突变分为致死性、温度敏感性或一般抑制性突变,它们会影响聚集和有效折叠途径之间的分配。

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