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本文引用的文献

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Structural basis for catalytic activation of thiocyanate hydrolase involving metal-ligated cysteine modification.硫氰酸水解酶催化激活的结构基础:涉及金属配位半胱氨酸修饰。
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Very fast prediction and rationalization of pKa values for protein-ligand complexes.蛋白质-配体复合物pKa值的快速预测与合理化分析
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High resolution X-ray molecular structure of the nitrile hydratase from Rhodococcus erythropolis AJ270 reveals posttranslational oxidation of two cysteines into sulfinic acids and a novel biocatalytic nitrile hydration mechanism.红平红球菌AJ270腈水合酶的高分辨率X射线分子结构揭示了两个半胱氨酸经翻译后氧化为亚磺酸以及一种新的生物催化腈水合机制。
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证据表明,来自恶臭假单胞菌的 Co 型腈水合酶的远程残基参与了其催化活性。

Evidence of the participation of remote residues in the catalytic activity of Co-type nitrile hydratase from Pseudomonas putida.

机构信息

Department of Chemistry and Chemical Biology and Institute for Complex Scientific Software, Northeastern University, Boston, Massachusetts 02115, USA.

出版信息

Biochemistry. 2011 Jun 7;50(22):4923-35. doi: 10.1021/bi101761e. Epub 2011 May 12.

DOI:10.1021/bi101761e
PMID:21473592
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3422561/
Abstract

Active sites may be regarded as layers of residues, whereby the residues that interact directly with substrate also interact with residues in a second shell and these in turn interact with residues in a third shell. These residues in the second and third layers may have distinct roles in maintaining the essential chemical properties of the first-shell catalytic residues, particularly their spatial arrangement relative to the substrate binding pocket, and their electrostatic and dynamic properties. The extent to which these remote residues participate in catalysis and precisely how they affect first-shell residues remains unexplored. To improve our understanding of the roles of second- and third-shell residues in catalysis, we used THEMATICS to identify residues in the second and third shells of the Co-type nitrile hydratase from Pseudomonas putida (ppNHase) that may be important for catalysis. Five of these predicted residues, and three additional, conserved residues that were not predicted, have been conservatively mutated, and their effects have been studied both kinetically and structurally. The eight residues have no direct contact with the active site metal ion or bound substrate. These results demonstrate that three of the predicted second-shell residues (α-Asp164, β-Glu56, and β-His147) and one predicted third-shell residue (β-His71) have significant effects on the catalytic efficiency of the enzyme. One of the predicted residues (α-Glu168) and the three residues not predicted (α-Arg170, α-Tyr171, and β-Tyr215) do not have any significant effects on the catalytic efficiency of the enzyme.

摘要

活性位点可以被视为残基层,其中与底物直接相互作用的残基也与第二层的残基相互作用,这些残基又与第三层的残基相互作用。第二层和第三层中的这些残基可能在维持第一层催化残基的基本化学性质方面具有不同的作用,特别是它们相对于底物结合口袋的空间排列及其静电和动态性质。这些远程残基在多大程度上参与催化,以及它们如何精确地影响第一层残基,仍有待探索。为了提高我们对第二和第三壳层残基在催化中的作用的理解,我们使用 THEMATICS 来鉴定假单胞菌(Pseudomonas putida)的 Co 型腈水合酶(ppNHase)的第二层和第三层中的残基,这些残基可能对催化很重要。其中五个预测的残基,以及三个未预测的保守残基,已经被保守突变,并对其动力学和结构进行了研究。这八个残基与活性位点金属离子或结合的底物没有直接接触。这些结果表明,三个预测的第二壳层残基(α-天冬氨酸 164、β-谷氨酸 56 和β-组氨酸 147)和一个预测的第三壳层残基(β-组氨酸 71)对酶的催化效率有显著影响。一个预测的残基(α-谷氨酸 168)和三个未预测的残基(α-精氨酸 170、α-酪氨酸 171 和β-酪氨酸 215)对酶的催化效率没有任何显著影响。