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一个不同寻常的阳离子结合位点和独特的结构域间相互作用区分了II类5-烯醇丙酮酰莽草酸-3-磷酸合酶。

An Unusual Cation-Binding Site and Distinct Domain-Domain Interactions Distinguish Class II Enolpyruvylshikimate-3-phosphate Synthases.

作者信息

Light Samuel H, Krishna Sankar N, Minasov George, Anderson Wayne F

机构信息

Center for Structural Genomics of Infectious Diseases and Department of Biochemistry and Molecular Genetics, Feinberg School of Medicine, Northwestern University , 303 East Chicago Avenue, Chicago, Illinois 60611, United States.

出版信息

Biochemistry. 2016 Mar 1;55(8):1239-45. doi: 10.1021/acs.biochem.5b00553. Epub 2016 Feb 12.

Abstract

Enolpyruvylshikimate-3-phosphate synthase (EPSPS) catalyzes a critical step in the biosynthesis of a number of aromatic metabolites. An essential prokaryotic enzyme and the molecular target of the herbicide glyphosate, EPSPSs are the subject of both pharmaceutical and commercial interest. Two EPSPS classes that exhibit low sequence homology, differing substrate/glyphosate affinities, and distinct cation activation properties have previously been described. Here, we report structural studies of the monovalent cation-binding class II Coxiella burnetii EPSPS (cbEPSPS). Three cbEPSPS crystal structures reveal that the enzyme undergoes substantial conformational changes that alter the electrostatic potential of the active site. A complex with shikimate-3-phosphate, inorganic phosphate (Pi), and K(+) reveals that ligand induced domain closure produces an unusual cation-binding site bordered on three sides by the N-terminal domain, C-terminal domain, and the product Pi. A crystal structure of the class I Vibrio cholerae EPSPS (vcEPSPS) clarifies the basis of differential class I and class II cation responsiveness, showing that in class I EPSPSs a lysine side chain occupies the would-be cation-binding site. Finally, we identify distinct patterns of sequence conservation at the domain-domain interface and propose that the two EPSPS classes have evolved to differently optimize domain opening-closing dynamics.

摘要

5-烯醇丙酮酰莽草酸-3-磷酸合酶(EPSPS)催化多种芳香族代谢物生物合成中的关键步骤。作为一种必需的原核酶以及除草剂草甘膦的分子靶点,EPSPS既具有药学研究价值,又具有商业价值。此前已描述了两类EPSPS,它们的序列同源性低,底物/草甘膦亲和力不同,阳离子激活特性也不同。在此,我们报告了单价阳离子结合的II类伯氏考克斯氏体EPSPS(cbEPSPS)的结构研究。三种cbEPSPS晶体结构表明,该酶经历了显著的构象变化,从而改变了活性位点的静电势。与莽草酸-3-磷酸、无机磷酸(Pi)和K⁺形成的复合物表明,配体诱导的结构域闭合产生了一个不寻常的阳离子结合位点,该位点三边分别由N端结构域、C端结构域和产物Pi界定。I类霍乱弧菌EPSPS(vcEPSPS)的晶体结构阐明了I类和II类阳离子反应性差异的基础,表明在I类EPSPS中,一个赖氨酸侧链占据了潜在的阳离子结合位点。最后,我们确定了结构域-结构域界面处不同的序列保守模式,并提出这两类EPSPS在进化过程中以不同方式优化了结构域开合动力学。

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