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基于小分子对接模拟的理性设计,对尖孢镰刀菌 FoFaeC 型 C 型阿魏酸酯酶的特异性进行改造,使其对甲基芥子酸具有更高的亲和力。

Tailoring the specificity of the type C feruloyl esterase FoFaeC from Fusarium oxysporum towards methyl sinapate by rational redesign based on small molecule docking simulations.

机构信息

Biochemical Process Engineering, Division of Chemical Engineering, Department of Civil, Environmental and Natural Resources Engineering, Luleå University of Technology, Luleå, Sweden.

Department of Chemical Sciences, University of Naples "Federico II", Naples, Italy.

出版信息

PLoS One. 2018 May 24;13(5):e0198127. doi: 10.1371/journal.pone.0198127. eCollection 2018.

Abstract

The type C feruloyl esterase FoFaeC from Fusarium oxysporum is a newly discovered enzyme with high potential for use in the hydrolysis of lignocellulosic biomass but it shows low activity towards sinapates. In this work, small molecule docking simulations were employed in order to identify important residues for the binding of the four model methyl esters of hydroxycinnamic acids, methyl ferulate/caffeate/sinapate/p-coumarate, to the predicted structure of FoFaeC. Subsequently rational redesign was applied to the enzyme' active site in order to improve its specificity towards methyl sinapate. A double mutation (F230H/T202V) was considered to provide hydrophobic environment for stabilization of the methoxy substitution on sinapate and a larger binding pocket. Five mutant clones and the wild type were produced in Pichia pastoris and biochemically characterized. All clones showed improved activity, substrate affinity, catalytic efficiency and turnover rate compared to the wild type against methyl sinapate, with clone P13 showing a 5-fold improvement in catalytic efficiency. Although the affinity of all mutant clones was improved against the four model substrates, the catalytic efficiency and turnover rate decreased for the substrates containing a hydroxyl substitution.

摘要

从尖孢镰刀菌中发现的 C 型阿魏酸酯酶 FoFaeC 是一种新型酶,具有很大的用于水解木质纤维素生物质的潜力,但它对芥子酸酯的活性较低。在这项工作中,采用小分子对接模拟的方法来确定四个模型羟基肉桂酸甲酯(阿魏酸甲酯/咖啡酸甲酯/芥子酸甲酯/对香豆酸甲酯)与 FoFaeC 预测结构结合的重要残基。随后,对酶的活性位点进行了合理的重新设计,以提高其对甲基芥子酸酯的特异性。考虑到双突变(F230H/T202V)可以为芥子酸酯上甲氧基的取代提供疏水环境,从而稳定芥子酸酯,并增大结合口袋。在巴斯德毕赤酵母中产生了五个突变体克隆和野生型,并进行了生化特性分析。与野生型相比,所有克隆对甲基芥子酸酯的活性、底物亲和力、催化效率和周转率都有所提高,其中克隆 P13 的催化效率提高了 5 倍。尽管所有突变体克隆对四种模型底物的亲和力都有所提高,但含有羟基取代的底物的催化效率和周转率都有所下降。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d947/5967792/855760524603/pone.0198127.g001.jpg

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