Pratap Shivendra, Kesari Pooja, Yadav Ravi, Dev Aditya, Narwal Manju, Kumar Pravindra
Department of Biotechnology, Indian Institute of Technology Roorkee, Roorkee, Uttarakhand 247667, India.
Department of Biotechnology, Indian Institute of Technology Roorkee, Roorkee, Uttarakhand 247667, India.
Int J Biol Macromol. 2017 Mar;96:759-765. doi: 10.1016/j.ijbiomac.2017.01.005. Epub 2017 Jan 3.
Lipopolysaccharide (LPS) is an important surface component and a potential virulence factor in the pathogenesis of Gram-negative bacteria. UDP-N-acetylglucosamine acyltransferase (LpxA) enzyme catalyzes the first reaction of LPS biosynthesis, reversible transfer of R-3-hydroxy-acyl moiety from donor R-3-hydroxy-acyl-acyl carrier protein to the 3' hydroxyl position of UDP-N-acetyl-glucosamine. LpxA enzyme's essentiality in bacterial survival and absence of any homologous protein in humans makes it a promising target for anti-bacterial drug development. Herein, we present the crystal structure of Moraxella catarrhalis LpxA (McLpxA). We propose that L171 is responsible for limiting the acyl chain length in McLpxA to 10C or 12C. The study reveals the plausible interactions between the highly conserved clusters of basic residues at the C-terminal end of McLpxA and acidic residues of acyl carrier protein (ACP). Furthermore, the crystal structure of McLpxA was used to screen potential inhibitors from NCI open database using various computational approaches viz. pharmacophore mapping, virtual screening and molecular docking. Molecules Mol212032, Mol609399 and Mol152546 showed best binding affinity with McLpxA among all screened molecules. These molecules mimic the substrate-LpxA binding interactions.
脂多糖(LPS)是革兰氏阴性菌致病过程中的一种重要表面成分和潜在毒力因子。UDP-N-乙酰葡糖胺酰基转移酶(LpxA)催化LPS生物合成的第一步反应,即R-3-羟基-酰基部分从供体R-3-羟基-酰基-酰基载体蛋白可逆转移至UDP-N-乙酰葡糖胺的3'羟基位置。LpxA酶在细菌存活中至关重要,且在人类中不存在任何同源蛋白,这使其成为抗菌药物开发的一个有前景的靶点。在此,我们展示了卡他莫拉菌LpxA(McLpxA)的晶体结构。我们提出L171负责将McLpxA中的酰基链长度限制为10C或12C。该研究揭示了McLpxA C末端高度保守的碱性残基簇与酰基载体蛋白(ACP)酸性残基之间可能的相互作用。此外,McLpxA的晶体结构被用于使用各种计算方法,即药效团映射、虚拟筛选和分子对接,从美国国立癌症研究所开放数据库中筛选潜在抑制剂。在所有筛选的分子中,分子Mol212032、Mol609399和Mol152546与McLpxA表现出最佳的结合亲和力。这些分子模拟了底物-LpxA的结合相互作用。