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利用重组融合蛋白糖苷酶对用于结晶的蛋白质进行去糖基化处理。

Deglycosylation of proteins for crystallization using recombinant fusion protein glycosidases.

作者信息

Grueninger-Leitch F, D'Arcy A, D'Arcy B, Chène C

机构信息

Department of Gene Technologies, Pharma Preclinical Research, F. Hoffmann-La Roche AG, Basel, Switzerland.

出版信息

Protein Sci. 1996 Dec;5(12):2617-22. doi: 10.1002/pro.5560051224.

DOI:10.1002/pro.5560051224
PMID:8976570
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2143308/
Abstract

Obtaining high quality protein crystals remains a rate-limiting step in the determination of three-dimensional X-ray structures. A frequently encountered problem in this respect is the high or heterogeneous carbohydrate content of many eukaryotic proteins. A number of reports have demonstrated the use of enzymatic deglycosylation in the crystallization of certain glycoproteins. Although this is an attractive tool, there are some problems that hinder the more widespread use of glycosidases in crystallization. First, commercially available glycosidases are relatively expensive, which virtually prohibits their use on a large scale. Second, the glycosidase must be removed from the glycoprotein of interest following deglycosylation, which is not always straightforward. To circumvent these problems we have cloned the two most generally useful glycosidases, peptide-N-glycosidase F and endoglycosidase F1 from Flavobacterium meningosepticum, as fusion proteins with glutathione S-transferase. The fusion not only allows rapid purification of these enzymes from Escherichia coli cell extracts, but also permits rapid removal from target proteins following deglycosylation. We have used these enzymes to obtain crystals of phytase from Aspergillus ficuum and acid phosphatase from Aspergillus niger and to obtain a new crystal form of recombinant human renin.

摘要

获得高质量的蛋白质晶体仍然是确定三维X射线结构的限速步骤。在这方面经常遇到的一个问题是许多真核蛋白质的碳水化合物含量高或不均一。一些报告已经证明了在某些糖蛋白结晶中使用酶促去糖基化。尽管这是一个有吸引力的工具,但仍有一些问题阻碍了糖苷酶在结晶中更广泛的应用。首先,市售的糖苷酶相对昂贵,这实际上禁止了它们的大规模使用。其次,去糖基化后必须从目标糖蛋白中去除糖苷酶,这并非总是简单易行的。为了规避这些问题,我们克隆了两种最常用的糖苷酶,来自脑膜败血黄杆菌的肽-N-糖苷酶F和内切糖苷酶F1,作为与谷胱甘肽S-转移酶的融合蛋白。这种融合不仅允许从大肠杆菌细胞提取物中快速纯化这些酶,而且还允许在去糖基化后从目标蛋白中快速去除。我们已经使用这些酶获得了来自泡盛曲霉的植酸酶和来自黑曲霉的酸性磷酸酶的晶体,并获得了重组人肾素的一种新晶体形式。

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本文引用的文献

1
Enzymatic deglycosylation as a tool for crystallization of mammalian binding proteins.酶促去糖基化作为一种用于哺乳动物结合蛋白结晶的工具。
Acta Crystallogr D Biol Crystallogr. 1994 Jul 1;50(Pt 4):380-4. doi: 10.1107/S0907444993013435.
2
How to measure and predict the molar absorption coefficient of a protein.如何测量和预测蛋白质的摩尔吸收系数。
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Multiple endoglycosidase F activities expressed by Flavobacterium meningosepticum endoglycosidases F2 and F3. Molecular cloning, primary sequence, and enzyme expression.脑膜败血金黄杆菌内切糖苷酶F2和F3表达的多种内切糖苷酶F活性。分子克隆、一级序列及酶表达。
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Expression of soluble recombinant glycoproteins with predefined glycosylation: application to the crystallization of the T-cell glycoprotein CD2.具有预定义糖基化的可溶性重组糖蛋白的表达:应用于T细胞糖蛋白CD2的结晶
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endo-beta-N-acetylglucosaminidase F: endoglycosidase from Flavobacterium meningosepticum that cleaves both high-mannose and complex glycoproteins.内切-β-N-乙酰氨基葡萄糖苷酶F:来自脑膜败血黄杆菌的内切糖苷酶,可切割高甘露糖型和复合型糖蛋白。
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Purification, N-terminal amino acid sequence and characterization of pH 2.5 optimum acid phosphatase (E.C. 3.1.3.2) from Aspergillus ficuum.来自泡盛曲霉的最适pH 2.5酸性磷酸酶(E.C. 3.1.3.2)的纯化、N端氨基酸序列及特性分析
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Characterization of recombinant human prorenin and renin.重组人肾素原和肾素的特性分析
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Endoglycosidases from Flavobacterium meningosepticum application to biological problems.来自脑膜炎败血金黄杆菌的内切糖苷酶在生物学问题中的应用。
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Cloning and expression of peptide-N4-(N-acetyl-beta-D-glucosaminyl)asparagine amidase F in Escherichia coli.肽-N4-(N-乙酰基-β-D-葡糖胺基)天冬酰胺酶F在大肠杆菌中的克隆与表达
J Biol Chem. 1990 Apr 25;265(12):6967-72.