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Nucleic Acids Res. 2014 Jul;42(Web Server issue):W320-4. doi: 10.1093/nar/gku316. Epub 2014 Apr 21.
2
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3
The crystal structure and biochemical properties of DHBPS from Streptococcus pneumoniae, a potential anti-infective target for Gram-positive bacteria.肺炎链球菌中DHBPS的晶体结构和生化特性,革兰氏阳性菌的潜在抗感染靶点。
Protein Expr Purif. 2013 Oct;91(2):161-8. doi: 10.1016/j.pep.2013.07.007. Epub 2013 Aug 15.
4
Fast, scalable generation of high-quality protein multiple sequence alignments using Clustal Omega.使用 Clustal Omega 快速、可扩展地生成高质量蛋白质多重序列比对。
Mol Syst Biol. 2011 Oct 11;7:539. doi: 10.1038/msb.2011.75.
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High-resolution phenotypic profiling defines genes essential for mycobacterial growth and cholesterol catabolism.高分辨率表型分析定义了分枝杆菌生长和胆固醇代谢所必需的基因。
PLoS Pathog. 2011 Sep;7(9):e1002251. doi: 10.1371/journal.ppat.1002251. Epub 2011 Sep 29.
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Acta Crystallogr D Biol Crystallogr. 2011 Apr;67(Pt 4):235-42. doi: 10.1107/S0907444910045749. Epub 2011 Mar 18.
8
Structural basis for pH dependent monomer-dimer transition of 3,4-dihydroxy 2-butanone-4-phosphate synthase domain from Mycobacterium tuberculosis.结核分枝杆菌 3,4-二羟基-2-丁酮-4-磷酸合酶结构域 pH 依赖性单体-二聚体转变的结构基础。
J Struct Biol. 2011 May;174(2):374-84. doi: 10.1016/j.jsb.2011.01.013. Epub 2011 Feb 4.
9
Potential anti-bacterial drug target: structural characterization of 3,4-dihydroxy-2-butanone-4-phosphate synthase from Salmonella typhimurium LT2.潜在的抗菌药物靶点:鼠伤寒沙门氏菌 LT2 中 3,4-二羟基-2-丁酮-4-磷酸合酶的结构特征。
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10
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霍乱弧菌3,4-二羟基-2-丁酮-4-磷酸合酶竞争性抑制的结构基础

Structural basis for competitive inhibition of 3,4-dihydroxy-2-butanone-4-phosphate synthase from Vibrio cholerae.

作者信息

Islam Zeyaul, Kumar Adarsh, Singh Suruchi, Salmon Laurent, Karthikeyan Subramanian

机构信息

From the CSIR-Institute of Microbial Technology, Council of Scientific and Industrial Research (CSIR), Sector 39-A, Chandigarh 160 036, India and.

Laboratoire de Chimie Bioorganique et Bioinorganique, Institut de Chimie Moléculaire et des Matériaux d'Orsay, Université Paris-Sud, CNRS UMR8182, F-91405 Orsay, France.

出版信息

J Biol Chem. 2015 May 1;290(18):11293-308. doi: 10.1074/jbc.M114.611830. Epub 2015 Mar 18.

DOI:10.1074/jbc.M114.611830
PMID:25792735
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4416836/
Abstract

The riboflavin biosynthesis pathway has been shown to be essential in many pathogens and is absent in humans. Therefore, enzymes involved in riboflavin synthesis are considered as potential antibacterial drug targets. The enzyme 3,4-dihydroxy-2-butanone-4-phosphate synthase (DHBPS) catalyzes one of the two committed steps in the riboflavin pathway and converts d-ribulose 5-phosphate (Ru5P) to l-3,4-dihydroxy-2-butanone 4-phosphate and formate. Moreover, DHBPS is shown to be indispensable for Mycobacterium, Salmonella, and Helicobacter species. Despite the essentiality of this enzyme in bacteria, no inhibitor has been identified hitherto. Here, we describe kinetic and crystal structure characterization of DHBPS from Vibrio cholerae (vDHBPS) with a competitive inhibitor 4-phospho-d-erythronohydroxamic acid (4PEH) at 1.86-Å resolution. In addition, we also report the structural characterization of vDHBPS in its apo form and in complex with its substrate and substrate plus metal ions at 1.96-, 1.59-, and 2.04-Å resolution, respectively. Comparison of these crystal structures suggests that 4PEH inhibits the catalytic activity of DHBPS as it is unable to form a proposed intermediate that is crucial for DHBPS activity. Furthermore, vDHBPS structures complexed with substrate and metal ions reveal that, unlike Candida albicans, binding of substrate to vDHBPS induces a conformational change from an open to closed conformation. Interestingly, the position of second metal ion, which is different from that of Methanococcus jannaschii, strongly supports an active role in the catalytic mechanism. Thus, the kinetic and structural characterization of vDHBPS reveals the molecular mechanism of inhibition shown by 4PEH and that it can be explored further for designing novel antibiotics.

摘要

核黄素生物合成途径在许多病原体中已被证明是必不可少的,而在人类中不存在。因此,参与核黄素合成的酶被认为是潜在的抗菌药物靶点。3,4-二羟基-2-丁酮-4-磷酸合酶(DHBPS)催化核黄素途径中两个关键步骤之一,将5-磷酸-d-核酮糖(Ru5P)转化为l-3,4-二羟基-2-丁酮4-磷酸和甲酸。此外,DHBPS对分枝杆菌、沙门氏菌和幽门螺杆菌属来说是不可或缺的。尽管这种酶在细菌中至关重要,但迄今为止尚未发现抑制剂。在此,我们描述了霍乱弧菌DHBPS(vDHBPS)与竞争性抑制剂4-磷酸-d-赤藓糖异羟肟酸(4PEH)在1.86 Å分辨率下的动力学和晶体结构特征。此外,我们还分别报告了vDHBPS的无配体形式、与底物以及底物加金属离子复合物在1.96 Å、1.59 Å和2.04 Å分辨率下的结构特征。这些晶体结构的比较表明,4PEH抑制DHBPS的催化活性,因为它无法形成对DHBPS活性至关重要的假定中间体。此外,与底物和金属离子复合的vDHBPS结构表明,与白色念珠菌不同,底物与vDHBPS的结合会诱导从开放构象到封闭构象的构象变化。有趣的是,第二个金属离子的位置与詹氏甲烷球菌不同,这有力地支持了其在催化机制中的积极作用。因此,vDHBPS的动力学和结构特征揭示了4PEH所表现出的抑制分子机制,并且可以进一步探索用于设计新型抗生素。