Kinetic studies of the mechanism of carbon-hydrogen bond breakage by the heterotetrameric sarcosine oxidase of Arthrobacter sp 1-IN

被引:93
作者
Harris, RJ
Meskys, R
Sutcliffe, MJ
Scrutton, NS
机构
[1] Univ Leicester, Dept Biochem, Leicester LE1 7RH, Leics, England
[2] Univ Leicester, Dept Chem, Leicester LE1 7RH, Leics, England
[3] Lithuania Acad Sci, Inst Biochem, Sector Biosynthesis, Lab Bioanal, LT-2600 Vilnius, Lithuania
关键词
D O I
10.1021/bi991941v
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 reaction of heterotetrameric sarcosine oxidase (TSOX) of Arthrobactor sp. 1-IN has been studied by stopped-flow spectroscopy, with particular emphasis on the reduction of the enzyme by sarcosine. Expression of the cloned gene encoding TSOX in Escherichia coli enables the production of TSOX on a scale suitable for stopped-flow studies. Treatment of the enzyme with sulfite provides the means for selective formation of a flavin-sulfite adduct with the covalent 8 alpha-(N-3-histidyl)-FMN. Formation of the sulfite-flavin adduct suppresses internal electron transfer between the noncovalent FAD (site of sarcosine oxidation) and the covalent FMN (site of enzyme oxidation) and thus enables detailed characterization of the kinetics of FAD reduction by sarcosine using stopped-flow methods. The rate of FAD reduction displays a simple hyperbolic dependence on sarcosine concentration. Studies in the pH range 6.5-10 indicate there are no kinetically influential ionizations in the enzyme-substrate complex. A plot of the limiting rate of flavin reduction/the enzyme-substrate dissociation constant (k(lim)/K-d) versus pH is bell-shaped and characterized by two macroscopic pK(a) values of 7.4 +/- 0.1 and 10.4 +/- 0.2. potential candidates for the two ionizable groups are discussed with reference to the structure of monomeric sarcosine oxidase (MSOX). The kinetic data are discussed with reference to potential mechanisms for the oxidation of amine molecules by flavoenzymes. Additionally, kinetic isotope effect studies of the rate of C-H bond breakage suggest that a ground-state quantum tunneling mechanism for H-transfer, facilitated by the low-frequency thermal motions of the protein molecule, accounts for C-H bond cleavage by TSOX. TSOX thus provides another example of C-H bond breakage by ground-state quantum tunneling, driven by protein dynamics [vibrationally enhanced ground-state quantum tunneling (VEGST)], for the oxidation of amines by enzymes.
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页码:1189 / 1198
页数:10
相关论文
共 37 条
[1]   KINETICS OF ELECTRON ENTRY, EXIT, AND INTERFLAVIN ELECTRON-TRANSFER DURING CATALYSIS BY SARCOSINE OXIDASE [J].
ALI, SN ;
ZELLER, HD ;
CALISTO, MK ;
JORNS, MS .
BIOCHEMISTRY, 1991, 30 (45) :10980-10986
[2]   Enzymatic H-transfer requires vibration-driven extreme tunneling [J].
Basran, J ;
Sutcliffe, MJ ;
Scrutton, NS .
BIOCHEMISTRY, 1999, 38 (10) :3218-3222
[3]  
Bell R. P., 1980, TUNNEL EFFECT CHEM, P51
[4]   VIBRATIONALLY ENHANCED TUNNELING AS A MECHANISM FOR ENZYMATIC HYDROGEN TRANSFER [J].
BRUNO, WJ ;
BIALEK, W .
BIOPHYSICAL JOURNAL, 1992, 63 (03) :689-699
[5]   HYDROGEN TUNNELING IN ENZYME-REACTIONS [J].
CHA, Y ;
MURRAY, CJ ;
KLINMAN, JP .
SCIENCE, 1989, 243 (4896) :1325-1330
[6]   SEQUENCE-ANALYSIS OF SARCOSINE OXIDASE AND NEARBY GENES REVEALS HOMOLOGIES WITH KEY ENZYMES OF FOLATE ONE-CARBON METABOLISM [J].
CHLUMSKY, LJ ;
ZHANG, LN ;
JORNS, MS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (31) :18252-18259
[7]   PREPARATION AND PROPERTIES OF RECOMBINANT CORYNEBACTERIAL SARCOSINE OXIDASE - EVIDENCE FOR POSTTRANSLATIONAL MODIFICATION DURING TURNOVER WITH SARCOSINE [J].
CHLUMSKY, LJ ;
ZHANG, LN ;
RAMSEY, AJ ;
JORNS, MS .
BIOCHEMISTRY, 1993, 32 (41) :11132-11142
[8]   Identification of the covalent flavin attachment site in sarcosine oxidase [J].
Chlumsky, LJ ;
Sturgess, AW ;
Nieves, E ;
Jorns, MS .
BIOCHEMISTRY, 1998, 37 (08) :2089-2095
[9]   EVIDENCE THAT BOTH PROTIUM AND DEUTERIUM UNDERGO SIGNIFICANT TUNNELING IN THE REACTION CATALYZED BY BOVINE SERUM AMINE OXIDASE [J].
GRANT, KL ;
KLINMAN, JP .
BIOCHEMISTRY, 1989, 28 (16) :6597-6605
[10]   The reaction of trimethylamine dehydrogenase with trimethylamine [J].
Jang, MH ;
Basran, J ;
Scrutton, NS ;
Hille, R .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (19) :13147-13154