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甘氨酰甘氨酸内肽酶的细胞壁靶向结构域可区分肽聚糖交联桥。

Cell wall-targeting domain of glycylglycine endopeptidase distinguishes among peptidoglycan cross-bridges.

作者信息

Lu Jeff Zhiqiang, Fujiwara Tamaki, Komatsuzawa Hitoshi, Sugai Motoyuki, Sakon Joshua

机构信息

Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, Arkansas 72701, USA.

出版信息

J Biol Chem. 2006 Jan 6;281(1):549-58. doi: 10.1074/jbc.M509691200. Epub 2005 Oct 28.

Abstract

ALE-1, a homologue of lysostaphin, is a peptidoglycan hydrolase that specifically lyses Staphylococcus aureus cell walls by cleaving the pentaglycine linkage between the peptidoglycan chains. Binding of ALE-1 to S. aureus cells through its C-terminal 92 residues, known as the targeting domain, is functionally important for staphylolytic activity. The ALE-1-targeting domain belongs to the SH3b domain family, the prokaryotic counterpart of the eukaryotic SH3 domains. The 1.75 angstroms crystal structure of the targeting domain shows an all-beta fold similar to typical SH3s but with unique features. The structure reveals patches of conserved residues among orthologous targeting domains, forming surface regions that can potentially interact with some common features of the Gram-positive cell wall. ALE-1-targeting domain binding studies employing various bacterial peptidoglycans demonstrate that the length of the interpeptide bridge, as well as the amino acid composition of the peptide, confers the maximum binding of the targeting domain to the staphylococcal peptidoglycan. Truncation of the highly conserved first 9 N-terminal residues results in loss of specificity to S. aureus cell wall-targeting, suggesting that these residues confer specificity to S. aureus cell wall.

摘要

ALE-1是溶葡萄球菌酶的同源物,是一种肽聚糖水解酶,通过切割肽聚糖链之间的五甘氨酸连接来特异性裂解金黄色葡萄球菌细胞壁。ALE-1通过其C端的92个残基(称为靶向结构域)与金黄色葡萄球菌细胞结合,这对溶葡萄球菌活性在功能上很重要。ALE-1靶向结构域属于SH3b结构域家族,是真核生物SH3结构域的原核对应物。靶向结构域的1.75埃晶体结构显示出与典型SH3结构相似的全β折叠,但具有独特特征。该结构揭示了直系同源靶向结构域中保守残基的区域,形成了可能与革兰氏阳性细胞壁的一些共同特征相互作用的表面区域。使用各种细菌肽聚糖的ALE-1靶向结构域结合研究表明,肽间桥的长度以及肽的氨基酸组成赋予了靶向结构域与葡萄球菌肽聚糖的最大结合。高度保守的N端前9个残基的截短导致对金黄色葡萄球菌细胞壁靶向的特异性丧失,表明这些残基赋予了对金黄色葡萄球菌细胞壁的特异性。

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