甲苯双加氧酶催化苯酚底物的氧化生物转化:分子对接研究

Q2 Chemical Engineering
Patrick Höring , Kyle Rothschild-Mancinelli , Narain D. Sharma , Derek R. Boyd , Christopher C.R. Allen
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引用次数: 6

摘要

甲苯双氧合酶催化(TDO)氧化将取代的苯酚底物转化为儿茶酚、对苯二酚和手性环己酮顺式二醇产品。即使在类似的底物之间,如邻甲酚、间甲酚和对甲酚,分离产物之间的比率也有很大差异。这些差异是由TDO活性位点内不同的结合相互作用引起的。本研究通过AutoDock工具对分子对接的结合相互作用进行了深入研究。为了解释所观察到的产物形成的区域选择性和立体选择性,酚醛底物的结合性质是主要的兴趣。TDO的椭圆形结合袋由极性区和疏水区组成,限制了可能的底物取向。酚羟基在活性位点优先与Gln-215和His-311形成氢键。在某些情况下,与其他氨基酸形成氢键,例如Asp-219和Met-220。取代基在苯酚环上的位置和类型影响了瞬态中间体的形成,从而影响了主要分离产物的性质和稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Oxidative biotransformations of phenol substrates catalysed by toluene dioxygenase: A molecular docking study

Oxidative biotransformations of phenol substrates catalysed by toluene dioxygenase: A molecular docking study

Toluene dioxygenase-catalysed (TDO) oxidation converts substituted phenol substrates into catechols, hydroquinones, and chiral cyclohexenone cis-diol products. The ratio between the isolated products varied widely even between similar substrates, e.g. o-cresol, m-cresol and p-cresol. These differences are caused by different binding interactions within the active site of TDO. This study provides insight into the binding interactions by molecular docking using AutoDock tools. The nature of binding of phenolic substrates was of major interest, in order to explain the observed regio- and stereo-selectiviy of product formation. The ellipse-shaped binding pocket of TDO consists of a polar and a hydrophobic region, limiting the possible substrate orientations. The phenolic hydroxyl group was preferentially hydrogen bonded with Gln-215 and His-311 in the active site. In some cases, a hydrogen bond was formed with other amino acids, e.g. Asp-219 and Met-220, instead. The position and type of the substituent on the phenol ring influences the formation of transient intermediates, and thus the nature and stability of the major isolated product.

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来源期刊
Journal of Molecular Catalysis B-enzymatic
Journal of Molecular Catalysis B-enzymatic 生物-生化与分子生物学
CiteScore
2.58
自引率
0.00%
发文量
0
审稿时长
3.4 months
期刊介绍: Journal of Molecular Catalysis B: Enzymatic is an international forum for researchers and product developers in the applications of whole-cell and cell-free enzymes as catalysts in organic synthesis. Emphasis is on mechanistic and synthetic aspects of the biocatalytic transformation. Papers should report novel and significant advances in one or more of the following topics; Applied and fundamental studies of enzymes used for biocatalysis; Industrial applications of enzymatic processes, e.g. in fine chemical synthesis; Chemo-, regio- and enantioselective transformations; Screening for biocatalysts; Integration of biocatalytic and chemical steps in organic syntheses; Novel biocatalysts, e.g. enzymes from extremophiles and catalytic antibodies; Enzyme immobilization and stabilization, particularly in non-conventional media; Bioprocess engineering aspects, e.g. membrane bioreactors; Improvement of catalytic performance of enzymes, e.g. by protein engineering or chemical modification; Structural studies, including computer simulation, relating to substrate specificity and reaction selectivity; Biomimetic studies related to enzymatic transformations.
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