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里氏木霉高产纤维素酶突变株中纤维二糖水解酶I的糖基化修饰

Modified glycosylation of cellobiohydrolase I from a high cellulase-producing mutant strain of Trichoderma reesei.

作者信息

Harrison M J, Nouwens A S, Jardine D R, Zachara N E, Gooley A A, Nevalainen H, Packer N H

机构信息

Macquarie University Centre for Analytical Biotechnology, School of Biological Sciences, Macquarie University, Sydney, Australia.

出版信息

Eur J Biochem. 1998 Aug 15;256(1):119-27. doi: 10.1046/j.1432-1327.1998.2560119.x.

DOI:10.1046/j.1432-1327.1998.2560119.x
PMID:9746354
Abstract

Cellobiohydrolase I is an industrially important exocellulase secreted in high yields by the filamentous fungus Trichoderma reesei. The nature and effect of glycosylation of CBHI and other cellulolytic enzymes is largely unknown, although many other structural and mechanistic aspects of cellulolytic enzymes are well characterised. Using a combination of liquid chromatography, electrospray mass spectrometry, solid-phase Edman degradation, and monosaccharide analysis we have identified every site of glycosylation of CBHI from a high cellulase-producing mutant strain of T. reesei, ALKO2877, and characterised each site in terms of its modifying carbohydrate and site-specific heterogeneity. The catalytic core domain comprises three N-linked glycans which each consist of a single N-acetylglucosamine residue. Within the glycopeptide linker domain, all eight threonines are variably glycosylated with between at least one, and up to three, mannose residues per site. All serines in this domain are at least partially glycosylated with a single mannose residue. This linker region has also been shown to be sulfated by a combination of ion chromatography and collision-induced dissociation electrospray mass spectrometry. The sulfate is probably mannose-linked. The biological significance of N-linked single N-acetylglucosamine in the catalytic core, and mannose sulfation in the linker region, is not known.

摘要

纤维二糖水解酶I是一种在工业上具有重要意义的外切纤维素酶,由丝状真菌里氏木霉高产分泌。尽管纤维素分解酶的许多其他结构和作用机制方面已得到充分表征,但CBHI和其他纤维素分解酶糖基化的性质和影响在很大程度上尚不清楚。我们结合使用液相色谱、电喷雾质谱、固相埃德曼降解和单糖分析,从里氏木霉的高产纤维素酶突变株ALKO2877中鉴定出了CBHI的每个糖基化位点,并根据其修饰的碳水化合物和位点特异性异质性对每个位点进行了表征。催化核心结构域包含三个N-连接聚糖,每个聚糖由一个单一的N-乙酰葡糖胺残基组成。在糖肽连接结构域内,所有八个苏氨酸均被可变糖基化,每个位点至少有一个,最多有三个甘露糖残基。该结构域中的所有丝氨酸至少部分被一个甘露糖残基糖基化。通过离子色谱和碰撞诱导解离电喷雾质谱联用还表明该连接区域被硫酸化。硫酸盐可能与甘露糖相连。催化核心中N-连接的单一N-乙酰葡糖胺以及连接区域中甘露糖硫酸化的生物学意义尚不清楚。

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Modified glycosylation of cellobiohydrolase I from a high cellulase-producing mutant strain of Trichoderma reesei.里氏木霉高产纤维素酶突变株中纤维二糖水解酶I的糖基化修饰
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Cellobiohydrolase I from Trichoderma reesei: identification of an active-site nucleophile and additional information on sequence including the glycosylation pattern of the core protein.里氏木霉的纤维二糖水解酶I:活性位点亲核试剂的鉴定及包括核心蛋白糖基化模式在内的序列附加信息。
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In vitro conversion of the carbohydrate moiety of fungal glycoproteins to mammalian-type oligosaccharides--evidence for N-acetylglucosaminyltransferase-I-accepting glycans from Trichoderma reesei.真菌糖蛋白碳水化合物部分在体外转化为哺乳动物型寡糖——里氏木霉N-乙酰葡糖胺基转移酶-I接受聚糖的证据
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