Stability of immobilized soybean lipoxygenases:: influence of coupling conditions on the ionization state of the active site Fe

被引:21
作者
Chikere, AC
Galunsky, B
Schünemann, V
Kasche, V
机构
[1] Tech Univ Hamburg Harburg, Dept Biotechnol 2, D-21071 Hamburg, Germany
[2] Med Univ Lubeck, Inst Phys, D-23538 Lubeck, Germany
关键词
lipoxygenase; enzyme stabilization; enzyme immobilization; metallo-enzymes;
D O I
10.1016/S0141-0229(00)00317-3
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The potential application of lipoxygenase as a versatile biocatalyst in enzyme technology is limited by its poor stability. Two types of soybean lipoxygenases, lipoxygenase-1 and -2 (LOX-1 and LOX-2) were purified by a two step anion exchange chromatography. Four different commercially available supports: CNBr Sepharose 4B, Fractogel (R) EMD Azlactone, Fractogel (R) EMD Epoxy, and Eupergic (R) C were tested for immobilization and stabilization of the purified isoenzymes. Both isoenzymes gave good yields in enzyme activity and good stability after immobilization on CNBr Sepharose 4B and Fractogel (R) EMD Azlactone. Rapid decay in activity associated with change in the ionization state of Fe, as shown by EPR measurements was observed within the first 5 days after immobilization on epoxy activated supports (Eupergit (R) C and Fractogel (R) EMD Epoxy) in high ionic strength buffers. Stabilization of the biocatalyst on these supports was achieved by careful adjustment of the immobilization conditions. When immobilized in phosphate buffer of pH 7.5 and low ionic strength (0.05 M), the half-life time of the immobilized enzyme increased 20 fold. The dependence of the stability of LOX immobilized on epoxy activated supports on the coupling conditions was attributed to a modulation of the ligand environment of the iron in the active site and consequently its reactivity. (C) 2001 Elsevier Science Inc. All rights reserved.
引用
收藏
页码:168 / 175
页数:8
相关论文
共 38 条
[1]   EPR STUDIES ON COMPOUND-I OF HORSERADISH-PEROXIDASE [J].
AASA, R ;
VANNGARD, T ;
DUNFORD, HB .
BIOCHIMICA ET BIOPHYSICA ACTA, 1975, 391 (02) :259-264
[2]   SELECTIVE OXIDATION - STABILIZATION BY MULTIPOINT ATTACHMENT OF FERREDOXIN NADP(+) REDUCTASE, AN INTERESTING COFACTOR RECYCLING ENZYME [J].
BES, MT ;
GOMEZMORENO, C ;
GUISAN, JM ;
FERNANDEZLAFUENTE, R .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 1995, 98 (03) :161-169
[3]  
Chaplin MF., 1990, ENZYME TECHNOLOGY
[4]   CHARACTERIZATION OF THE NONHEME IRON CENTER OF HUMAN 5-LIPOXYGENASE BY ELECTRON-PARAMAGNETIC-RESONANCE, FLUORESCENCE, AND ULTRAVIOLET-VISIBLE SPECTROSCOPY - REDOX CYCLING BETWEEN FERROUS AND FERRIC STATES [J].
CHASTEEN, ND ;
GRADY, JK ;
SKOREY, KI ;
NEDEN, KJ ;
RIENDEAU, D ;
PERCIVAL, MD .
BIOCHEMISTRY, 1993, 32 (37) :9763-9771
[5]  
DIAZPARRA D, 1993, BIOTECHNOL APPL BIOC, V18, P359
[6]   High frequency EPR predictions for the non-heme iron protein lipoxygenase [J].
Doctor, KS ;
Gaffney, BJ .
APPLIED MAGNETIC RESONANCE, 1996, 11 (3-4) :425-435
[7]   LIPOXYGENASE ISOENZYMES - A SPECTROSCOPIC AND STRUCTURAL CHARACTERIZATION OF SOYBEAN SEED ENZYMES [J].
DRAHEIM, JE ;
CARROLL, RT ;
MCNEMAR, TB ;
DUNHAM, WR ;
SANDS, RH ;
FUNK, MO .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1989, 269 (01) :208-218
[8]   THE INITIAL CHARACTERIZATION OF THE IRON ENVIRONMENT IN LIPOXYGENASE BY MOSSBAUER-SPECTROSCOPY [J].
DUNHAM, WR ;
CARROLL, RT ;
THOMPSON, JF ;
SANDS, RH ;
FUNK, MO .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1990, 190 (03) :611-617
[9]  
FERNANDEZLAFUEN.R, 1995, ENZYME MICROB TECHNO, V17, P386
[10]  
Fox B. G., 1998, COMPREHENSIVE BIOL C, V3, P262