Skarzynski T, Mistry A, Wonacott A, Hutchinson S E, Kelly V A, Duncan K
Glaxo Wellcome Research and Development, Medicines Research Centre, Stevenage, UK. ts
Structure. 1996 Dec 15;4(12):1465-74. doi: 10.1016/s0969-2126(96)00153-0.
UDP-N-acetylglucosamine enolpyruvyl transferase (MurA), catalyses the first committed step of bacterial cell wall biosynthesis and is a target for the antibiotic fosfomycin. The only other known enolpyruvyl transferase is 5-enolpyruvylshikimate-3-phosphate (EPSP) synthase, an enzyme involved in the shikimic acid pathway and the target for the herbicide glyphosate. Inhibitors of enolpyruvyl transferases are of biotechnological interest as MurA and EPSP synthase are found exclusively in plants and microbes.
The crystal structure of Escherichia coli MurA complexed with UDP-N-acetylglucosamine (UDP-GlcNAc) and fosfomycin has been determined at 1.8 A resolution. The structure consists of two domains with the active site located between them. The domains have a very similar secondary structure, and the overall protein architecture is similar to that of EPSP synthase. The fosfomycin molecule is covalently bound to the cysteine residue Cys115, whereas UDP-GlcNAc makes several hydrogen-bonding interactions with residues from both domains.
The present structure reveals the mode of binding of the natural substrate UDP-GlcNAc and of the drug fosfomycin, and provides information on the residues involved in catalysis. These results should aid the design of inhibitors which would interfere with enzyme-catalyzed reactions in the early stage of the bacterial cell wall biosynthesis. Furthermore, the crystal structure of MurA provides a model for predicting active-site residues in EPSP synthase that may be involved in catalysis and substrate binding.
UDP-N-乙酰葡糖胺烯醇丙酮酸转移酶(MurA)催化细菌细胞壁生物合成的首个关键步骤,是抗生素磷霉素的作用靶点。唯一已知的其他烯醇丙酮酸转移酶是5-烯醇丙酮酸莽草酸-3-磷酸(EPSP)合酶,该酶参与莽草酸途径,是除草剂草甘膦的作用靶点。烯醇丙酮酸转移酶抑制剂具有生物技术研究价值,因为MurA和EPSP合酶仅存在于植物和微生物中。
已测定大肠杆菌MurA与UDP-N-乙酰葡糖胺(UDP-GlcNAc)及磷霉素复合物的晶体结构,分辨率为1.8埃。该结构由两个结构域组成,活性位点位于二者之间。这些结构域具有非常相似的二级结构,整体蛋白质结构与EPSP合酶相似。磷霉素分子与半胱氨酸残基Cys115共价结合,而UDP-GlcNAc与两个结构域的残基形成多种氢键相互作用。
当前结构揭示了天然底物UDP-GlcNAc和药物磷霉素的结合模式,并提供了参与催化的残基信息。这些结果应有助于设计在细菌细胞壁生物合成早期干扰酶催化反应的抑制剂。此外,MurA的晶体结构为预测EPSP合酶中可能参与催化和底物结合的活性位点残基提供了模型。