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合理靶向 Wzb 磷酸酶和 Wzc 激酶相互作用可抑制鲍曼不动杆菌胞外多糖合成和生物膜形成。

Rational targeting of Wzb phosphatase and Wzc kinase interaction inhibits extracellular polysaccharides synthesis and biofilm formation in Acinetobacter baumannii.

机构信息

Department of Biochemistry, Central University of Rajasthan, Bandarsindri, Ajmer, 305817, India.

Department of Biochemistry, Central University of Rajasthan, Bandarsindri, Ajmer, 305817, India.

出版信息

Carbohydr Res. 2020 Jun;492:108025. doi: 10.1016/j.carres.2020.108025. Epub 2020 May 1.

Abstract

Acinetobacter baumannii is an opportunistic nosocomial pathogen, and responsible for high mortality and morbidity. Biofilm formation is one of the resistance determinants, where extracellular polysaccharide (EPS) is an essential component. EPS synthesis and its export is regulated by the bacterial Wza-Wzb-Wzc system. Wzc exhibits auto-phosphorylation protein tyrosine kinase activity, while Wzb is a protein tyrosine phosphatase. Wzb mediates dephosphorylation of Wzc. Dephosphorylated Wzc is required for the export of the EPS through porin Wza-Wzc complex. It shows that the interaction of Wzb with Wzc is critical for the export of EPS. Therefore, if the Wzb-Wzc interaction is inhibited, then it might hinder the EPS transport and diminish the biofilm formation. In this study, we have modelled the Wzb, and Wzc proteins and further validated using PSVS, ProSA, RAMPAGE, and PDBsum. The modelled proteins were used for protein-protein docking. The docked protein-protein complex was minimized by Schrodinger software using OPLS_2005 force field. The binding site of the minimized Wzb-Wzc complex was identified by Sitemap. The high throughput virtual screening identified Labetalol hydrochloride and 4-{1-hydroxy-2-[(1-methyl-3-phenylpropyl) amino] propyl} phenol from FDA-approved drug library based on their interaction at the interface of Wzb-Wzc complex. The inhibitor-protein complex was further undergone molecular mechanics analysis using Generalized Born model and Solvent Accessibility (MMGBSA) to estimate the binding free energies. The lead was also used to generate the pharmacophore model and screening the molecule with antimicrobial scaffold. The identified lead was experimentally validated for its effect on EPS quantity and biofilm formation by A. baumannii. Wzb-Wzc interaction is essential for biofilm and EPS export; hence, the identified lead might be useful to regulate the biofilm formation by A. baumannii.

摘要

鲍曼不动杆菌是一种机会性病原体,是导致高死亡率和高发病率的原因之一。生物膜形成是一种耐药决定因素,其中细胞外多糖(EPS)是一个重要组成部分。EPS 的合成及其输出受细菌 Wza-Wzb-Wzc 系统的调节。Wzc 表现出自身磷酸化蛋白酪氨酸激酶活性,而 Wzb 是一种蛋白酪氨酸磷酸酶。Wzb 介导 Wzc 的去磷酸化。去磷酸化的 Wzc 是通过孔蛋白 Wza-Wzc 复合物输出 EPS 所必需的。这表明 Wzb 与 Wzc 的相互作用对于 EPS 的输出至关重要。因此,如果抑制 Wzb-Wzc 相互作用,可能会阻碍 EPS 运输并减少生物膜形成。在这项研究中,我们对 Wzb 和 Wzc 蛋白进行了建模,并使用 PSVS、ProSA、RAMPAGE 和 PDBsum 进一步进行了验证。使用蛋白质-蛋白质对接对建模后的蛋白质进行对接。使用 Schrödinger 软件通过 OPLS_2005 力场对对接后的蛋白质-蛋白质复合物进行最小化处理。使用 Sitemap 确定最小化后的 Wzb-Wzc 复合物的结合位点。高通量虚拟筛选从 FDA 批准的药物库中基于它们在 Wzb-Wzc 复合物界面的相互作用,确定了拉贝洛尔盐酸盐和 4-{1-羟基-2-[(1-甲基-3-苯基丙基)氨基]丙基}苯酚作为抑制剂。进一步使用广义 Born 模型和溶剂可及性(MMGBSA)对抑制剂-蛋白复合物进行分子力学分析,以估算结合自由能。还使用先导化合物生成药效团模型,并筛选具有抗菌骨架的分子。通过实验验证了所鉴定的先导化合物对鲍曼不动杆菌 EPS 数量和生物膜形成的影响。Wzb-Wzc 相互作用对于生物膜和 EPS 输出是必不可少的;因此,所鉴定的先导化合物可能有助于调节鲍曼不动杆菌的生物膜形成。

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