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2
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本文引用的文献

1
The OPLS [optimized potentials for liquid simulations] potential functions for proteins, energy minimizations for crystals of cyclic peptides and crambin.用于蛋白质的OPLS(液体模拟优化势)势函数、环肽和克拉宾晶体的能量最小化。
J Am Chem Soc. 1988 Mar 1;110(6):1657-66. doi: 10.1021/ja00214a001.
2
The energy landscape of 3-deoxy-D-manno-octulosonate 8-phosphate synthase.3-脱氧-D-甘露庚酮糖酸-8-磷酸合酶的能量景观。
Biochemistry. 2009 Dec 15;48(49):11706-14. doi: 10.1021/bi901341h.
3
Three decades of the class A beta-lactamase acyl-enzyme.三十年的 A 类β-内酰胺酶酰-酶。
Curr Protein Pept Sci. 2009 Oct;10(5):401-7. doi: 10.2174/138920309789351967.
4
Reversing evolution: re-establishing obligate metal ion dependence in a metal-independent KDO8P synthase.逆转进化:在一种不依赖金属的KDO8P合酶中重新建立对金属离子的绝对依赖性
J Mol Biol. 2009 Jul 24;390(4):646-61. doi: 10.1016/j.jmb.2009.05.014. Epub 2009 May 15.
5
Electronic structure of the metal center in the Cd(2+), Zn(2+), and Cu(2+) substituted forms of KDO8P synthase: implications for catalysis.KDO8P合酶的Cd(2+)、Zn(2+)和Cu(2+)取代形式中金属中心的电子结构:对催化作用的影响。
Biochemistry. 2009 Apr 28;48(16):3610-30. doi: 10.1021/bi801955h.
6
Structural reorganization and preorganization in enzyme active sites: comparisons of experimental and theoretically ideal active site geometries in the multistep serine esterase reaction cycle.酶活性位点的结构重组与预组织:多步丝氨酸酯酶反应循环中实验性和理论上理想活性位点几何结构的比较。
J Am Chem Soc. 2008 Nov 19;130(46):15361-73. doi: 10.1021/ja803213p. Epub 2008 Oct 22.
7
Metallo-beta-lactamases (classification, activity, genetic organization, structure, zinc coordination) and their superfamily.金属β-内酰胺酶(分类、活性、基因组织、结构、锌配位)及其超家族。
Biochem Pharmacol. 2007 Dec 15;74(12):1686-701. doi: 10.1016/j.bcp.2007.05.021. Epub 2007 Jun 2.
8
Minimalist active-site redesign: teaching old enzymes new tricks.极简主义活性位点重新设计:让旧酶学新招
Angew Chem Int Ed Engl. 2007;46(18):3212-36. doi: 10.1002/anie.200604205.
9
Structural and mechanistic changes along an engineered path from metallo to nonmetallo 3-deoxy-D-manno-octulosonate 8-phosphate synthases.沿着从金属型到非金属型3-脱氧-D-甘露糖辛酮酸8-磷酸合酶的工程化路径的结构和机制变化。
Biochemistry. 2007 Apr 17;46(15):4532-44. doi: 10.1021/bi6024879. Epub 2007 Mar 24.
10
Modeling electrostatic effects in proteins.蛋白质中静电效应的建模
Biochim Biophys Acta. 2006 Nov;1764(11):1647-76. doi: 10.1016/j.bbapap.2006.08.007. Epub 2006 Aug 25.

金属和非金属 KDO8P 合成酶的共同机制基础。

Common basis for the mechanism of metallo and non-metallo KDO8P synthases.

机构信息

Department of Biochemistry and Molecular Biology, Wayne State University School of Medicine, Detroit, Michigan 48201, United States.

出版信息

J Inorg Biochem. 2010 Dec;104(12):1267-75. doi: 10.1016/j.jinorgbio.2010.08.008. Epub 2010 Aug 19.

DOI:10.1016/j.jinorgbio.2010.08.008
PMID:20825995
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2949461/
Abstract

The three-dimensional structures of metal and non-metal enzymes that catalyze the same reaction are often quite different, a clear indication of convergent evolution. However, there are interesting cases in which the same scaffold supports both a metal and a non-metal catalyzed reaction. One of these is 3-deoxy-D-manno-octulosonate 8-phosphate (KDO8P) synthase (KDO8PS), a bacterial enzyme that catalyzes the synthesis of KDO8P and inorganic phosphate (P(i)) from phosphoenolpyruvate (PEP), arabinose 5-phosphate (A5P), and water. This reaction is one of the key steps in the biosynthesis of bacterial endotoxins. The evolutionary tree of KDO8PS is evenly divided between metal and non-metal forms, both having essentially identical structures. Mutagenesis and crystallographic studies suggest that one or two residues at most determine whether or not KDO8PS requires a metal for function, a clear example of "minimalist evolution". Quantum mechanical/molecular mechanical (QM/MM) simulations of both the enzymatic and non-enzymatic synthesis of KDO8P have revealed the mechanism underlying the switch between metal and non-metal dependent catalysis. The principle emerging from these studies is that this conversion is possible in KDO8PS because the metal is not involved in an activation process, but primarily contributes to orienting properly the reactants to lower the activation energy, an action easily mimicked by amino acid side-chains.

摘要

催化相同反应的金属酶和非金属酶的三维结构通常差异很大,这清楚地表明了趋同进化。然而,也有一些有趣的例子,同一个支架既支持金属催化反应,也支持非金属催化反应。其中之一是 3-脱氧-D-甘露辛酮糖 8-磷酸(KDO8P)合酶(KDO8PS),这是一种细菌酶,能够催化 KDO8P 和无机磷酸(P(i))从磷酸烯醇丙酮酸(PEP)、阿拉伯糖 5-磷酸(A5P)和水中合成。该反应是细菌内毒素生物合成的关键步骤之一。KDO8PS 的进化树在金属和非金属形式之间平均分配,两者的结构基本相同。突变和晶体学研究表明,KDO8PS 最多只需要一个或两个残基来决定是否需要金属才能发挥功能,这是“极简主义进化”的一个明显例子。KDO8P 的酶促和非酶促合成的量子力学/分子力学(QM/MM)模拟揭示了金属和非金属依赖催化之间转换的机制。这些研究得出的原理是,KDO8PS 中可以进行这种转换,因为金属不参与激活过程,而是主要有助于正确定向反应物以降低活化能,氨基酸侧链很容易模拟这种作用。