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X4模块代表了一类具有新特性的碳水化合物结合模块新家族。

X4 modules represent a new family of carbohydrate-binding modules that display novel properties.

作者信息

Bolam David N, Xie Hefang, Pell Gavin, Hogg Deborah, Galbraith Greta, Henrissat Bernard, Gilbert Harry J

机构信息

School of Cell and Molecular Biosciences, University of Newcastle upon Tyne, The Agriculture Building, Newcastle upon Tyne NE1 7RU, United Kingdom.

出版信息

J Biol Chem. 2004 May 28;279(22):22953-63. doi: 10.1074/jbc.M313317200. Epub 2004 Mar 5.

DOI:10.1074/jbc.M313317200
PMID:15004012
Abstract

The hydrolysis of the plant cell wall by microbial glycoside hydrolases and esterases is the primary mechanism by which stored organic carbon is utilized in the biosphere, and thus these enzymes are of considerable biological and industrial importance. Plant cell wall-degrading enzymes in general display a modular architecture comprising catalytic and non-catalytic modules. The X4 modules in glycoside hydrolases represent a large family of non-catalytic modules whose function is unknown. Here we show that the X4 modules from a Cellvibrio japonicus mannanase (Man5C) and arabinofuranosidase (Abf62A) bind to polysaccharides, and thus these proteins comprise a new family of carbohydrate-binding modules (CBMs), designated CBM35. The Man5C-CBM35 binds to galactomannan, insoluble amorphous mannan, glucomannan, and manno-oligosaccharides but does not interact with crystalline mannan, cellulose, cello-oligosaccharides, or other polysaccharides derived from the plant cell wall. Man5C-CBM35 also potentiates mannanase activity against insoluble amorphous mannan. Abf62A-CBM35 interacts with unsubstituted oat-spelt xylan but not substituted forms of the hemicellulose or xylo-oligosaccharides, and requires calcium for binding. This is in sharp contrast to other xylan-binding CBMs, which interact in a calcium-independent manner with both xylo-oligosaccharides and decorated xylans.

摘要

微生物糖苷水解酶和酯酶对植物细胞壁的水解作用是生物圈中储存的有机碳被利用的主要机制,因此这些酶具有相当重要的生物学和工业意义。一般来说,植物细胞壁降解酶呈现出包含催化模块和非催化模块的模块化结构。糖苷水解酶中的X4模块代表了一大类功能未知的非催化模块。在这里,我们表明来自日本纤维弧菌甘露聚糖酶(Man5C)和阿拉伯呋喃糖苷酶(Abf62A)的X4模块与多糖结合,因此这些蛋白质构成了一个新的碳水化合物结合模块(CBM)家族,命名为CBM35。Man5C-CBM35与半乳甘露聚糖、不溶性无定形甘露聚糖、葡甘露聚糖和甘露寡糖结合,但不与结晶甘露聚糖、纤维素、纤维寡糖或其他源自植物细胞壁的多糖相互作用。Man5C-CBM35还增强了甘露聚糖酶对不溶性无定形甘露聚糖的活性。Abf62A-CBM35与未取代的燕麦-斯佩尔特木聚糖相互作用,但不与半纤维素的取代形式或木寡糖相互作用,并且结合需要钙。这与其他木聚糖结合CBM形成鲜明对比,其他CBM以不依赖钙的方式与木寡糖和修饰的木聚糖相互作用。

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