Construction and optimization of a monophasic organic-water system for enzymatic synthesis of p-nitrobenzyl β-D-glucopyranosides by reverse hydrolysis

被引:18
作者
Tong, AM
Xu, JH
Lu, WY
Lin, GQ
机构
[1] E China Univ Sci & Technol, State Key Lab Bioreactor Engn, Lab Biocatalysis & Bioproc, Shanghai 200237, Peoples R China
[2] Chinese Acad Sci, Shanghai Inst Organ Chem, Shanghai 200032, Peoples R China
基金
中国国家自然科学基金;
关键词
reversed hydrolysis; beta-D-glucopyranoside; almond beta-D-glucosidase; organic medium; dioxane-water system;
D O I
10.1016/j.molcatb.2004.11.004
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A monophasic organic-water system for efficient enzymatic synthesis of P-D-glucopyranoside by reverse hydrolysis was constructed and optimized. p-Nitrobenzyl alcohol (pNBA), selected as a model substrate alcohol, was readily glucosylated with D-glucose through reverse hydrolysis using almond beta-D-glucosidase in a monophasic aqueous-organic medium, producing a new glucoside, p-nitrobenzyl beta-D-glucopyranoside (pNBG). The effects of different buffers, organic solvents and water contents were investigated. Buffer type and pH affected the initial reaction rate but had little effect on the final yields. The ratio of organic solvent to water plays a crucial role in shifting the reaction equilibrium toward synthesis, but a minimum amount of water is necessary to maintain the enzyme activity. Dioxane, which was previously known as an unsuitable solvent for beta-D-glucosidase-catalyzed reactions, was found to be the most appropriate solvent for this synthetic procedure. The reaction equilibrium and enzyme stability in the reaction medium were also investigated. Under the optimal reaction conditions, i.e. 90% dioxane (v/v) + 10% buffer (Na2HPO4-KH2PO4, 70 mM, pH 6.0) with alcohol-to-glucose molar ratio of 9:1, p-nitrobenzyl beta-D-glucopyranoside was produced with a maximum yield (13.3%). (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:83 / 88
页数:6
相关论文
共 41 条
[1]   Chemoenzymatic syntheses of naturally occurring β-glucosides [J].
Akita, H ;
Kurashima, K ;
Nakamura, T ;
Kato, K .
TETRAHEDRON-ASYMMETRY, 1999, 10 (12) :2429-2439
[2]   A kinetic study of almond-β-glucosidase catalysed synthesis of hexyl-glycosides in low aqueous media -: Influence of glycosyl donor and water activity [J].
Andersson, M ;
Adlercreutz, P .
JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2001, 14 (4-6) :69-76
[3]   EFFECT OF WATER ACTIVITY ON ENZYMATIC-SYNTHESIS OF ALKYLGLYCOSIDES [J].
CHAHID, Z ;
MONTET, D ;
PINA, M ;
GRAILLE, J .
BIOTECHNOLOGY LETTERS, 1992, 14 (04) :281-284
[4]   Perspectives for the industrial enzymatic production of glycosides [J].
de Roode, BM ;
Franssen, MCR ;
van der Padt, A ;
Boom, RM .
BIOTECHNOLOGY PROGRESS, 2003, 19 (05) :1391-1402
[5]  
FABER K, 2000, BIOTRANSFORMATIONS O, P307
[6]  
GROUT DHG, 1998, CURR OPIN CHEM BIOL, V2, P96
[7]   ENZYMATIC-SYNTHESIS OF MONOTERPENYL BETA-D-GLUCOSIDES BY VARIOUS BETA-GLUCOSIDASES [J].
GUNATA, Z ;
VALLIER, MJ ;
SAPIS, JC ;
BAUMES, R ;
BAYONOVE, C .
ENZYME AND MICROBIAL TECHNOLOGY, 1994, 16 (12) :1055-1058
[8]  
Huenke FU, 1999, BIOCATAL BIOTRANSFOR, V17, P251
[9]   Sulfolobus solfataricus β-glycosidase-catalysed synthesis of sugar-alcohol conjugates in the presence of organic solvents [J].
Huneke, FU ;
Bailey, D ;
Nucci, R ;
Cowan, D .
BIOCATALYSIS AND BIOTRANSFORMATION, 2000, 18 (04) :291-299
[10]   Enzymatic synthesis of butylglycosides by glycosidases [J].
Ismail, A ;
Ghoul, M .
BIOTECHNOLOGY LETTERS, 1996, 18 (10) :1199-1204