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1
Mapping enzymatic functionalities of mannuronan C-5 epimerases and their modular units by dynamic force spectroscopy.通过动态力谱法绘制甘露糖醛酸 C-5 差向异构酶及其模块化单元的酶功能图谱。
Carbohydr Res. 2005 Dec 30;340(18):2782-95. doi: 10.1016/j.carres.2005.09.020. Epub 2005 Oct 24.
2
Application of high-performance anion-exchange chromatography with pulsed amperometric detection and statistical analysis to study oligosaccharide distributions--a complementary method to investigate the structure and some properties of alginates.应用高效阴离子交换色谱-脉冲安培检测法及统计分析研究寡糖分布——一种用于研究海藻酸盐结构和某些性质的补充方法。
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3
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。
Biochem J. 2004 Jul 1;381(Pt 1):155-64. doi: 10.1042/BJ20031265.
4
Determination of average degree of polymerisation and distribution of oligosaccharides in a partially acid-hydrolysed homopolysaccharide: a comparison of four experimental methods applied to mannuronan.部分酸水解同多糖中低聚糖的平均聚合度及分布的测定:应用于甘露糖醛酸聚糖的四种实验方法比较
J Chromatogr A. 2004 Feb 13;1026(1-2):271-81. doi: 10.1016/j.chroma.2003.11.045.
5
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.
6
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.
7
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
Biopolymers. 2002 Feb;63(2):77-88. doi: 10.1002/bip.10017.
8
A structural basis for processivity.持续性的结构基础。
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9
Enhancement of the quality of MALDI mass spectra of highly acidic oligosaccharides by using a nafion-coated probe.使用涂有全氟磺酸离子交换膜的探针提高高酸性寡糖的基质辅助激光解吸/电离质谱质量谱图质量
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10
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.

古洛糖醛酸形成性甘露糖醛酸C-5差向异构酶AlgE1和AlgE6的作用模式及亚位点研究

Mode of action and subsite studies of the guluronan block-forming mannuronan C-5 epimerases AlgE1 and AlgE6.

作者信息

Holtan Synnøve, Bruheim Per, Skjåk-Braek Gudmund

机构信息

Norwegian Biopolymer Laboratory, Department of Biotechnology, The Norwegian University of Science and Technology (NTNU), Trondheim, Norway.

出版信息

Biochem J. 2006 Apr 15;395(2):319-29. doi: 10.1042/BJ20051804.

DOI:10.1042/BJ20051804
PMID:16390328
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1422759/
Abstract

AlgE1, AlgE5 and AlgE6 are members of a family of mannuronan C-5 epimerases encoded by the bacterium Azotobacter vinelandii, and are active in the biosynthesis of alginate, where they catalyse the post-polymerization conversion of beta-D-mannuronic acid (M) residues into alpha-L-guluronic acid residues (G). All enzymes show preference for introducing G-residues neighbouring a pre-existing G. They also have the capacity to convert single M residues flanked by G, thus 'condensing' G-blocks to form almost homopolymeric guluronan. Analysis of the length and distribution of G-blocks based on specific enzyme degradation combined with size-exclusion chromatography, electrospray ionization MS, HPAEC-PAD (high-performance anion-exchange chromatography and pulsed amperometric detection), MALDI (matrix-assisted laser-desorption ionization)-MS and NMR revealed large differences in block length and distribution generated by AlgE1 and AlgE6, probably reflecting their different degree of processivity. When acting on polyMG as substrates, AlgE1 initially forms only long homopolymeric G-blocks >50, while AlgE6 gives shorter blocks with a broader block size distribution. Analyses of the AlgE1 and AlgE6 subsite specificities by the same methodology showed that a mannuronan octamer and heptamer respectively were the minimum substrate chain lengths needed to accommodate enzyme activities. The fourth M residue from the non-reducing end is epimerized first by both enzymes. When acting on MG-oligomers, AlgE1 needed a decamer while AlgE6 an octamer to accommodate activity. By performing FIA (flow injection analysis)-MS on the lyase digests of epimerized and standard MG-oligomers, the M residue in position 5 from the non-reducing end was preferentially attacked by both enzymes, creating an MGMGGG-sequence (underlined and boldface indicate the epimerized residue).

摘要

AlgE1、AlgE5和AlgE6是由维涅兰德固氮菌编码的甘露糖醛酸C-5差向异构酶家族的成员,它们在藻酸盐的生物合成中具有活性,在藻酸盐生物合成过程中,它们催化β-D-甘露糖醛酸(M)残基向α-L-古洛糖醛酸残基(G)的聚合后转化。所有酶都倾向于在已存在的G残基附近引入G残基。它们还能够转化两侧为G的单个M残基,从而“浓缩”G块以形成几乎均聚的古洛糖醛酸聚糖。基于特定酶降解结合尺寸排阻色谱、电喷雾电离质谱、高效阴离子交换色谱和脉冲安培检测、基质辅助激光解吸电离质谱和核磁共振对G块的长度和分布进行分析,结果显示AlgE1和AlgE6产生的块长度和分布存在很大差异,这可能反映了它们不同的持续合成能力。当以聚MG为底物时,AlgE1最初仅形成长度大于50的长均聚G块,而AlgE6产生的块较短,块尺寸分布较宽。用相同方法对AlgE1和AlgE6亚位点特异性进行分析表明,甘露糖醛酸聚糖八聚体和七聚体分别是适应酶活性所需的最小底物链长度。两种酶均首先使来自非还原端的第四个M残基发生差向异构化。当作用于MG-寡聚体时,AlgE1需要一个十聚体而AlgE6需要一个八聚体来适应活性。通过对差向异构化的和标准的MG-寡聚体的裂解酶消化产物进行流动注射分析质谱,来自非还原端第5位的M残基优先受到两种酶的攻击,产生MGMGGG序列(下划线和粗体表示差向异构化的残基)。