GAMMA-GLUTAMYLTRANSPEPTIDASE-CATALYZED ACYL-TRANSFER TO THE ADDED ACCEPTOR DOES NOT PROCEED VIA THE PING-PONG MECHANISM

被引:7
作者
GOLOLOBOV, MY
BATEMAN, RC
机构
[1] Dept. of Chemistry and Biochemistry, University of Southern Mississippi, Hattiesburg
关键词
D O I
10.1042/bj3040869
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
Acyl-transfer catalysed by gamma-glutamyltranspeptidase from bovine kidney was studied using gamma-L- and gamma-D-Glu-p-nitroanilide as the donor and GlyGly as the acceptor. The transfer of the gamma-Glu group to GlyGly was shown to be accompanied by transfer of the gamma-Glu group to water (hydrolysis). The results were compared with acyl-transfer catalysed by the representative serine protease, alpha-chymotrypsin. The main difference between the kinetic mechanism of the acyl-transfer reactions catalysed by these enzymes, which contain an active-site serine and form an acyl-enzyme intermediate but belong to different enzyme classes, was found to consist in the role of the enzyme-donor-acceptor complex. This complex is not formed at any acceptor concentrations in the acyl-transfer reactions catalysed by the serine proteases. In contrast, in the gamma-glutamyltranspeptidase catalysed acyl-transfer the pathway going through the ternary enzyme-donor-acceptor complex formed from the enzyme-acceptor complex becomes the main pathway of the transfer reaction even at moderate acceptor concentrations. As a result, gamma-glutamyltranspeptidase catalysis follows a sequential mechanism with random equilibrium addition of the substrates and ordered release of the products. The second distinction concerns the inhibitory effect of the acceptor. In the case of alpha-chymotrypsin this was the result of true inhibition, i.e. a dead-end formation of the enzyme-acceptor complex. A salt effect caused by the acceptor was the rationale of a similar effect observed in acyl-transfer catalysed by gamma-glutamyltranspeptidase.
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页码:869 / 876
页数:8
相关论文
共 47 条
[1]  
ALLISON RD, 1985, METHOD ENZYMOL, V113, P419
[2]  
ANTONOV VK, 1981, EUR J BIOCHEM, V117, P195
[3]   SOME KINETIC-PROPERTIES OF GAMMA-GLUTAMYLTRANSFERASE FROM RABBIT LIVER [J].
BAGREL, D ;
PETITCLERC, C ;
SCHIELE, F ;
SIEST, G .
BIOCHIMICA ET BIOPHYSICA ACTA, 1981, 658 (02) :220-231
[4]   KINETICS OF ALPHA-CHYMOTRYPSIN REACTIONS IN PRESENCE OF ADDED NUCLEOPHILES [J].
BENDER, ML ;
GUNTER, CR ;
KEZDY, FJ ;
CLEMENT, GE .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1964, 86 (18) :3697-&
[5]   DETERMINATION OF INDIVIDUAL RATE CONSTANTS OF ALPHA-CHYMOTRYPSIN-CATALYZED HYDROLYSIS WITH ADDED NUCLEOPHILIC AGENT, 1, 4-BUTANEDIOL [J].
BEREZIN, IV ;
KAZANSKAYA, NF ;
KLYOSOV, AA .
FEBS LETTERS, 1971, 15 (02) :121-+
[6]  
BIZZOZERO SA, 1988, INT J PEPT PROT RES, V32, P64
[7]   YIELD OPTIMIZATION IN THE KINETICALLY CONTROLLED ENZYMIC PEPTIDE-SYNTHESIS [J].
BRATOVANOVA, EK ;
STOINEVA, IB ;
PETKOV, DD .
TETRAHEDRON, 1988, 44 (12) :3633-3637
[8]   MECHANISM OF CARBOXYPEPTIDASE-Y-CATALYZED PEPTIDE SEMISYNTHESIS [J].
CHRISTENSEN, U ;
DROHSE, HB ;
MOLGAARD, L .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1992, 210 (02) :467-473
[9]   GAMMA-GLUTAMYLTRANSFERASE OF RAT-KIDNEY - SIMULTANEOUS ASSAY OF HYDROLYSIS AND TRANSFER-REACTIONS WITH [GLUTAMATE-C-14]GLUTATHIONE [J].
ELCE, JS ;
BROXMEYER, B .
BIOCHEMICAL JOURNAL, 1976, 153 (02) :223-232