Modification of enzyme surface negative charges via covalent immobilization for tailoring the activity and enantioselectivity

被引:9
作者
Wang, Pei-Yun [1 ]
Tsai, Shau-Wei [1 ]
机构
[1] Chang Gung Univ, Inst Biochem & Biomed Engn, Kwei Shan Tao Yuan 33302, Taiwan
关键词
Esterase; Covalent immobilization; Kinetics resolution; Biphasic media; HYDROLYTIC RESOLUTION; DIRECTED EVOLUTION; ACID-ESTERS; LIPASE; SITE; PH; THERMOLYSIN; SPECIFICITY; PROFILES; PROTEINS;
D O I
10.1016/j.jtice.2008.12.001
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
With the hydrolytic resolution of (R,S)-mandelates in biphasic media via an esterase (SNSM-87) from Klebsiella oxytoca as the model system, increasing of the ionization constants of catalytic imidazolium moiety (i.e. pK(2R) from 5.96 to 4.11 and pK(2S) from 5.16 to 3.66) was confirmed if the enzyme was immobilized on a hexamethylenamino-activated support (Sepabeads (R) EC-HA) for decreasing the negative surface charges via multipoint attachments of the carboxylic acid groups to the support. A detailed kinetic analysis of varying the leaving alcohol moiety, substrate concentration and aqueous pH resulted in structure-reactivity correlations, concentration-activity profiles and pH-reactivity profiles that could be employed for the rationale of maximum enantioselectivity of V-S/V-R = 41.2 for (R,S)-methyl mandelate. Comparisons of the structure-reactivity correlations in terms of log(k(2R)/K-mR)(int), log(k(2S)/K-mS)(int) and log(E-int) varied with the inductive parameter F for all enzyme preparations were made, showing the cooperative interaction among pH, F and ionization constants of catalytic imidazolium moiety on effectively manipulating the enzyme activity and enantioselectivity. (C) 2008 Taiwan Institute of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:364 / 370
页数:7
相关论文
共 40 条
[1]   Kinetic and thermodynamic study of a chemically modified highly active xylanase from Scopulariopsis sp -: Existence of an essential amino group [J].
Afzal, Ahmed Jawaad ;
Bokhari, Saleem Ahmed ;
Siddiqui, Khawar Sohail .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2007, 141 (2-3) :273-297
[2]   Controlling lipase enantioselectivity for organic synthesis [J].
Berglund, P .
BIOMOLECULAR ENGINEERING, 2001, 18 (01) :13-22
[3]  
Bornscheuer UT, 2006, HYDROLASES IN ORGANIC SYNTHESIS: REGIO- AND STEREOSELECTIVE BIOTRANSFORMATIONS, 2ND EDITION, P1
[4]   Methods to increase enantioselectivity of lipases and esterases [J].
Bornscheuer, UT .
CURRENT OPINION IN BIOTECHNOLOGY, 2002, 13 (06) :543-547
[5]   Optimizing lipases and related enzymes for efficient application [J].
Bornscheuer, UT ;
Bessler, C ;
Srinivas, R ;
Krishna, SH .
TRENDS IN BIOTECHNOLOGY, 2002, 20 (10) :433-437
[6]   Do enzymes change the nature of transition states? Mapping the transition state for general acid-base catalysis of a serine protease [J].
Bott, RR ;
Chan, G ;
Domingo, B ;
Ganshaw, G ;
Hsia, CY ;
Knapp, M ;
Murray, CJ .
BIOCHEMISTRY, 2003, 42 (36) :10545-10553
[7]   Molecular modeling as a powerful technique for understanding small-large molecules interactions [J].
Botta, M ;
Corelli, F ;
Manetti, F ;
Tafi, A .
FARMACO, 2002, 57 (02) :153-165
[8]   Mechanistic origins of the substrate selectivity of serine proteases [J].
Case, A ;
Stein, RL .
BIOCHEMISTRY, 2003, 42 (11) :3335-3348
[9]  
DAVIS BG, 2003, CURR OPIN BIOTECHNOL, V14
[10]   The effects of modifying the surface charge on the catalytic activity of a thermolysin-like protease [J].
de Kreij, A ;
van den Burg, B ;
Venema, G ;
Vriend, G ;
Eijsink, VGH ;
Nielsen, JE .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (18) :15432-15438