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嗜热真菌 GH30 多功能酶的结构与突变研究揭示其独特特性。

Unique features of the bifunctional GH30 from Thermothelomyces thermophila revealed by structural and mutational studies.

机构信息

Industrial Biotechnology & Biocatalysis Group, Biotechnology Laboratory, School of Chemical Engineering, National Technical University of Athens, Athens, Greece.

Laboratory of Structural Biology and Biotechnology, Department of Chemical Engineering, University of Patras, Patras, Greece.

出版信息

Carbohydr Polym. 2021 Dec 1;273:118553. doi: 10.1016/j.carbpol.2021.118553. Epub 2021 Aug 12.

Abstract

Fungal xylanases belonging to family GH30_7, initially categorized as endo-glucuronoxylanases, are now known to differ both in terms of substrate specificity, as well as mode of action. Recently, TtXyn30A, a GH30_7 xylanase from Thermothelomyces thermophila, was shown to possess dual activity, acting on the xylan backbone in both an endo- and an exo- manner. Here, in an effort to identify the structural characteristics that append these functional properties to the enzyme, we present the biochemical characterization of various TtXyn30A mutants as well as its crystal structure, alone, and in complex with the reaction product. An auxiliary catalytic amino acid has been identified, while it is also shown that glucuronic acid recognition is not mediated by a conserved arginine residue, as shown by previously determined GH30 structures.

摘要

属于 GH30_7 家族的真菌木聚糖酶,最初被归类为内切葡聚糖木聚糖酶,现在已知在底物特异性以及作用方式上存在差异。最近,来自嗜热真菌Thermothelomyces thermophila 的 GH30_7 木聚糖酶 TtXyn30A 被证明具有双重活性,既能以内切和外切方式作用于木聚糖主链。在这里,为了确定将这些功能特性附加到酶上的结构特征,我们介绍了各种 TtXyn30A 突变体的生化特性及其晶体结构,单独和与反应产物复合的晶体结构。已经确定了一个辅助催化氨基酸,同时还表明,正如先前确定的 GH30 结构所示,葡萄糖醛酸识别不是由保守的精氨酸残基介导的。

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