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Single-molecular pair unbinding studies of Mannuronan C-5 epimerase AlgE4 and its polymer substrate.甘露糖醛酸C-5差向异构酶AlgE4及其聚合物底物的单分子对解离研究
Biomacromolecules. 2004 Jul-Aug;5(4):1288-95. doi: 10.1021/bm0345211.
2
Biochemical analysis of the processive mechanism for epimerization of alginate by mannuronan C-5 epimerase AlgE4.甘露糖醛酸C-5差向异构酶AlgE4催化藻酸盐差向异构化的持续作用机制的生化分析。
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3
The Pseudomonas fluorescens AlgG protein, but not its mannuronan C-5-epimerase activity, is needed for alginate polymer formation.荧光假单胞菌的AlgG蛋白是藻酸盐聚合物形成所必需的,但其甘露糖醛酸C-5-差向异构酶活性并非必需。
J Bacteriol. 2003 Jun;185(12):3515-23. doi: 10.1128/JB.185.12.3515-3523.2003.
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Time-resolved 1H and 13C NMR spectroscopy for detailed analyses of the Azotobacter vinelandii mannuronan C-5 epimerase reaction.用于详细分析棕色固氮菌甘露糖醛酸C-5差向异构酶反应的时间分辨1H和13C核磁共振光谱法。
Biochim Biophys Acta. 2002 Mar 15;1570(2):104-12. doi: 10.1016/s0304-4165(02)00195-2.
5
Mode of action of recombinant Azotobacter vinelandii mannuronan C-5 epimerases AlgE2 and AlgE4.重组棕色固氮菌甘露糖醛酸 C-5 差向异构酶 AlgE2 和 AlgE4 的作用模式
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6
Hexuronyl C5-epimerases in alginate and glycosaminoglycan biosynthesis.藻酸盐和糖胺聚糖生物合成中的己糖醛酸C5-表异构酶。
Biochimie. 2001 Aug;83(8):819-30. doi: 10.1016/s0300-9084(01)01313-x.
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Mannuronan C-5 epimerases and cellular differentiation of Azotobacter vinelandii.甘露糖醛酸C-5差向异构酶与棕色固氮菌的细胞分化
Environ Microbiol. 2000 Feb;2(1):27-38. doi: 10.1046/j.1462-2920.2000.00074.x.
8
Mannuronan C-5-epimerases and their application for in vitro and in vivo design of new alginates useful in biotechnology.甘露糖醛酸 C-5- 差向异构酶及其在体外和体内设计用于生物技术的新型藻酸盐中的应用。
Metab Eng. 1999 Jul;1(3):262-9. doi: 10.1006/mben.1999.0130.
9
The A modules of the Azotobacter vinelandii mannuronan-C-5-epimerase AlgE1 are sufficient for both epimerization and binding of Ca2+.棕色固氮菌甘露糖醛酸-C-5-表异构酶AlgE1的A模块对于C5差向异构化和Ca2+结合均已足够。
J Bacteriol. 1999 May;181(10):3033-8. doi: 10.1128/JB.181.10.3033-3038.1999.
10
The recombinant Azotobacter vinelandii mannuronan C-5-epimerase AlgE4 epimerizes alginate by a nonrandom attack mechanism.
J Biol Chem. 1999 Apr 30;274(18):12316-22. doi: 10.1074/jbc.274.18.12316.

具有新表异构化模式特征的重组棕色固氮菌甘露糖醛酸C-5表异构酶的构建与分析。

Construction and analyses of hybrid Azotobacter vinelandii mannuronan C-5 epimerases with new epimerization pattern characteristics.

作者信息

Bjerkan Tonje M, Lillehov Bjørn E, Strand Wenche I, Skjåk-Braek Gudmund, Valla Svein, Ertesvåg Helga

机构信息

Department of Biotechnology, Norwegian University of Science and Technology, N-7491 Trondheim, Norway.

出版信息

Biochem J. 2004 Aug 1;381(Pt 3):813-21. doi: 10.1042/BJ20031580.

DOI:10.1042/BJ20031580
PMID:15089747
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1133891/
Abstract

The secreted mannuronan C-5 epimerases from Azotobacter vinelandii form a family of seven homologous modular type enzymes, which appear to have evolved through duplications and point mutations in the individual modules. The catalytic A modules of these enzymes are responsible for generating the characteristic sequence distribution patterns of G residues in the industrially important polymer alginate by epimerizing M (beta-D-mannuronic acid) moieties to G (alpha-L-guluronic acid). Forty-six different hybrid enzymes were constructed by exchanging parts of the sequences encoding the A modules of AlgE2 (generates consecutive stretches of G residues) and AlgE4 (generates alternating structures). These hybrid enzymes introduce a variety of new monomer-sequence patterns into their substrates, and some regions important for the subsite specificity or processivity of the enzymes were identified. By using time-resolved NMR spectroscopy, it became clear that the rates for introducing alternating structures and consecutive stretches of G residues are different for each enzyme, and that it is the ratio between these rates that determines the overall epimerization pattern. These findings open up new possibilities in biotechnology and in studies of the many biological functions of alginates.

摘要

来自棕色固氮菌的分泌型甘露糖醛酸C-5差向异构酶形成了一个由七种同源模块化类型酶组成的家族,这些酶似乎是通过各个模块中的重复和点突变进化而来的。这些酶的催化A模块通过将M(β-D-甘露糖醛酸)部分差向异构化为G(α-L-古洛糖醛酸),负责在工业上重要的聚合物海藻酸盐中产生G残基的特征序列分布模式。通过交换编码AlgE2(产生连续的G残基片段)和AlgE4(产生交替结构)的A模块的部分序列,构建了46种不同的杂合酶。这些杂合酶将多种新的单体序列模式引入其底物中,并鉴定出了一些对酶的亚位点特异性或持续合成能力很重要的区域。通过使用时间分辨核磁共振光谱法,很明显每种酶引入交替结构和连续G残基片段的速率是不同的,正是这些速率之间的比率决定了整体差向异构化模式。这些发现为生物技术以及海藻酸盐多种生物学功能的研究开辟了新的可能性。