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利用分子对接、动力学和裂解试验通过肽聚糖O-乙酰化理解金黄色葡萄球菌中溶菌酶抗性的结构-功能关系

Understanding the Structure-Function Relationship of Lysozyme Resistance in Staphylococcus aureus by Peptidoglycan O-Acetylation Using Molecular Docking, Dynamics, and Lysis Assay.

作者信息

Pushkaran Anju C, Nataraj Namrata, Nair Nisha, Götz Friedrich, Biswas Raja, Mohan C Gopi

机构信息

‡Microbial Genetics, Interfaculty Institute for Microbiology and Infection Medicine Tübingen (IMIT), University of Tübingen, 72074 Tübingen, Germany.

出版信息

J Chem Inf Model. 2015 Apr 27;55(4):760-70. doi: 10.1021/ci500734k. Epub 2015 Mar 16.

Abstract

Lysozyme is an important component of the host innate defense system. It cleaves the β-1,4 glycosidic bonds between N-acetylmuramic acid and N-acetylglucosamine of bacterial peptidoglycan and induce bacterial lysis. Staphylococcus aureus (S. aureus), an opportunistic commensal pathogen, is highly resistant to lysozyme, because of the O-acetylation of peptidoglycan by O-acetyl transferase (oatA). To understand the structure-function relationship of lysozyme resistance in S. aureus by peptidoglycan O-acetylation, we adapted an integrated approach to (i) understand the effect of lysozyme on the growth of S. aureus parental and the oatA mutant strain, (ii) study the lysozyme induced lysis of exponentially grown and stationary phase of both the S. aureus parental and oatA mutant strain, (iii) investigate the dynamic interaction mechanism between normal (de-O-acetylated) and O-acetylated peptidoglycan substrate in complex with lysozyme using molecular docking and molecular dynamics simulations, and (iv) quantify lysozyme resistance of S. aureus parental and the oatA mutant in different human biological fluids. The results indicated for the first time that the active site cleft of lysozyme binding with O-acetylated peptidoglycan in S. aureus was sterically hindered and the structural stability was higher for the lysozyme in complex with normal peptidoglycan. This could have conferred reduced survival of the S. aureus oatA mutant in different human biological fluids. Consistent with this computational analysis, the experimental data confirmed decrease in the growth, lysozyme induced lysis, and lysozyme resistance, due to peptidoglycan O-acetylation in S. aureus.

摘要

溶菌酶是宿主固有防御系统的重要组成部分。它能裂解细菌肽聚糖中N - 乙酰胞壁酸和N - 乙酰葡糖胺之间的β-1,4糖苷键,从而诱导细菌裂解。金黄色葡萄球菌是一种机会性共生病原体,由于O - 乙酰转移酶(oatA)使肽聚糖发生O - 乙酰化,因而对溶菌酶具有高度抗性。为了通过肽聚糖O - 乙酰化了解金黄色葡萄球菌中溶菌酶抗性的结构 - 功能关系,我们采用了一种综合方法:(i)了解溶菌酶对金黄色葡萄球菌亲本菌株和oatA突变株生长的影响;(ii)研究溶菌酶对处于指数生长期和稳定期的金黄色葡萄球菌亲本菌株和oatA突变株的裂解作用;(iii)利用分子对接和分子动力学模拟研究正常(去O - 乙酰化)和O - 乙酰化肽聚糖底物与溶菌酶复合物之间的动态相互作用机制;(iv)量化金黄色葡萄球菌亲本菌株和oatA突变株在不同人体生物体液中的溶菌酶抗性。结果首次表明,溶菌酶与金黄色葡萄球菌中O - 乙酰化肽聚糖结合的活性位点裂隙受到空间位阻,且溶菌酶与正常肽聚糖复合物的结构稳定性更高。这可能导致金黄色葡萄球菌oatA突变株在不同人体生物体液中的存活率降低。与该计算分析结果一致,实验数据证实,由于金黄色葡萄球菌中肽聚糖的O - 乙酰化,其生长、溶菌酶诱导的裂解以及溶菌酶抗性均有所降低。

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