MECHANISM OF MANGANESE PEROXIDASE COMPOUND-II REDUCTION - EFFECT OF ORGANIC-ACID CHELATORS AND PH

被引:104
作者
KISHI, K
WARIISHI, H
MARQUEZ, L
DUNFORD, HB
GOLD, MH
机构
[1] OREGON GRAD INST SCI & TECHNOL,DEPT CHEM BIOCHEM & MOLEC BIOL,PORTLAND,OR 97291
[2] UNIV ALBERTA,DEPT CHEM,EDMONTON T6G 2G2,AB,CANADA
关键词
D O I
10.1021/bi00195a010
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
The effect of oxalate, malonate, lactate, and succinate chelators on the reduction of Phanerochaete chrysosporium manganese peroxidase compound II by Mn-II was investigated using stopped-flow techniques. All rate data were collected from single-turnover experiments under pseudo-first-order conditions. With oxalate, the reduction of compound II by Mn-II exhibited saturation behavior when the observed pseudo-first-order rate constants were plotted against oxalate concentration. The plots passed through the origin, indicating that the reduction by Mn-II is irreversible at all concentrations of oxalate. Maximal stimulation of the rate of compound II reduction occurred at 2 mM oxalate, the concentration of oxalate found in the extracellular medium of agitated cultures of this fungus. In contrast, maximal stimulation of the reduction of compound II by Mn-II only was observed at high (>20 mM) nonphysiological concentrations of malonate and lactate. Furthermore, at low concentrations of malonate and lactate, the reduction of compound II appeared to be reversible. These results suggest that at physiological concentrations oxalate chelates and stabilizes Mn-III enhancing its efficient removal from the enzyme. The rate constants for compound II reduction exhibited bell-shaped curves as a function of pH and had optima at pHs 5.0-5.4. In the presence of succinate, triphasic kinetics were observed for compound II reduction by Mn-II. In contrast to the reduction of compound II by Mn-II, various chelators had no observable effect on the formation of compound I. However, they did affect the steady-state oxidation of 2,6-dimethoxyphenol.
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页码:8694 / 8701
页数:8
相关论文
共 44 条
[11]   FUNCTION AND MECHANISM OF ACTION OF PEROXIDASES [J].
DUNFORD, HB ;
STILLMAN, JS .
COORDINATION CHEMISTRY REVIEWS, 1976, 19 (03) :187-251
[12]  
DUTTON MV, 1992, APPL MICROBIOL BIOT, V39, P5
[13]   MN(II) OXIDATION IS THE PRINCIPAL FUNCTION OF THE EXTRACELLULAR MN-PEROXIDASE FROM PHANEROCHAETE-CHRYSOSPORIUM [J].
GLENN, JK ;
AKILESWARAN, L ;
GOLD, MH .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1986, 251 (02) :688-696
[14]   PURIFICATION AND CHARACTERIZATION OF AN EXTRACELLULAR MN(II)-DEPENDENT PEROXIDASE FROM THE LIGNIN-DEGRADING BASIDIOMYCETE, PHANEROCHAETE-CHRYSOSPORIUM [J].
GLENN, JK ;
GOLD, MH .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1985, 242 (02) :329-341
[15]  
GOLD MH, 1989, ACS SYM SER, V389, P127
[16]   DEPOLYMERIZATION OF A SYNTHETIC LIGNIN INVITRO BY LIGNIN PEROXIDASE [J].
HAMMEL, KE ;
MOEN, MA .
ENZYME AND MICROBIAL TECHNOLOGY, 1991, 13 (01) :15-18
[17]  
HARRIS RZ, 1991, J BIOL CHEM, V266, P8751
[18]  
HAYASHI Y, 1979, J BIOL CHEM, V254, P9101
[19]  
HEWSON WD, 1976, J BIOL CHEM, V251, P6036
[20]   HORSERADISH-PEROXIDASE .18. ARRHENIUS ACTIVATION-ENERGY FOR FORMATION OF COMPOUND-1 [J].
HEWSON, WD ;
DUNFORD, HB .
CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE, 1975, 53 (13) :1928-1932