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针对耐药性卡他莫拉菌的分支酸合成酶的植物化学物质的生物物理和计算机模拟研究。

Biophysical and In-Silico Studies of Phytochemicals Targeting Chorismate Synthase from Drug-Resistant Moraxella Catarrhalis.

机构信息

Department of Biotechnology, Indian Institute of Technology Roorkee, Roorkee, 247667, India.

出版信息

Protein J. 2020 Oct;39(5):449-460. doi: 10.1007/s10930-020-09923-y. Epub 2020 Oct 10.

DOI:10.1007/s10930-020-09923-y
PMID:33037984
Abstract

Chorismate serves as a crucial precursor for the synthesis of many aromatic compounds essential for the survival and virulence in various bacteria and protozoans. Chorismate synthase, a vital enzyme in the shikimate pathway, is responsible for the formation of chorismate from enolpyruvylshikimate-3-phosphate (EPSP). Moraxella catarrhalis is reported to be resistant to many beta-lactam antibiotics and causes chronic ailments such as otitis media, sinusitis, laryngitis, and bronchopulmonary infections. Here, we have cloned the aroC gene from Moraxella catarrhalis in pET28c and heterologously produced the chorismate synthase (~ 43 kDa) in Escherichia coli BL21(DE3) cells. We have predicted the three-dimensional structure of this enzyme and used the refined model for ligand-based virtual screening against Supernatural Database using PyRx tool that led to the identification of the top three molecules (caffeic acid, gallic acid, and o-coumaric acid). The resultant protein-ligand complex structures were subjected to 50 ns molecular dynamics (MD) simulation using GROMACS. Further, the binding energy was calculated by MM/PBSA approach using the trajectory obtained from MD simulation. The binding affinities of these compounds were validated with ITC experiments, which suggest that gallic acid has the highest binding affinity amongst these three phytochemicals. Together, these results pave the way for the use of these phytochemicals as potential anti-bacterial compounds.

摘要

分支酸是许多芳香族化合物的重要前体,对于各种细菌和原生动物的生存和毒力至关重要。分支酸合酶是莽草酸途径中的一种关键酶,负责将烯醇丙酮酸-3-磷酸(EPSP)转化为分支酸。卡他莫拉菌被报道对许多β-内酰胺类抗生素具有耐药性,并导致慢性疾病,如中耳炎、鼻窦炎、喉炎和支气管肺部感染。在这里,我们从卡他莫拉菌中克隆了 aroC 基因,并在大肠杆菌 BL21(DE3)细胞中异源表达了分支酸合酶(~43 kDa)。我们预测了该酶的三维结构,并使用 PyRx 工具对 Supernatural 数据库进行基于配体的虚拟筛选,鉴定出了前三种分子(咖啡酸、没食子酸和邻香豆酸)。所得的蛋白-配体复合物结构使用 GROMACS 进行了 50 ns 的分子动力学(MD)模拟。进一步使用 MD 模拟获得的轨迹,通过 MM/PBSA 方法计算结合能。使用 ITC 实验验证了这些化合物的结合亲和力,结果表明没食子酸在这三种植物化学物质中具有最高的结合亲和力。综上所述,这些结果为这些植物化学物质作为潜在的抗菌化合物的应用铺平了道路。

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