Participation of the phenolic hydroxyl group of Tyr-8 in the catalytic mechanism of human glutathione transferase P1-1
- 15 July 1992
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 285 (2) , 537-540
- https://doi.org/10.1042/bj2850537
Abstract
The coding region of cDNA corresponding to human class Pi glutathione transferase P1-1 was amplified by the PCR, subcloned into an expression vector, pKHP1, expressed in Escherichia coli, and characterized. The physicochemical and catalytic properties of recombinant glutathione transferase P1-1 were indistinguishable from those of the enzyme previously isolated from human placenta. The active-site residue Tyr-8 of the wild-type enzyme was converted into Phe by means of oligonucleotide-directed mutagenesis. The mutant enzyme Y8F displayed a 300-fold decrease in specific activity, ascribable mainly to a lowered k(cat.) (or V) value. Kinetic parameters reflecting binding affinity, S0.5 (substrate concn. giving 1/2V) and I50 (concn. of inhibitor giving 50% remaining activity), were only moderately elevated in the mutant enzyme. These results indicate that Tyr-8 contributes primarily to catalysis as such, rather than to binding of the substrates. The dependence of k(cat.)/Km on pH shows an optimum at pH 7.0, defined by acidic and basic ionic dissociation constants with pKa1 = 6.7 and pKa2 = 7.3 respectively. The mutant enzyme Y8F does not display the basic limb of the k(cat.)/Km versus pH profile, but shows a monotonic increase of k(cat.)/Km with an apparent pKa1 of 7.1. The results indicate that the phenolic hydroxyl group of Tyr-8 in un-ionized form, but not the phenolate of Tyr-8, contributes to catalysis by glutathione transferase P1-1.Keywords
This publication has 18 references indexed in Scilit:
- Nomenclature for human glutathione transferasesBiochemical Journal, 1992
- Mutation of an evolutionarily conserved tyrosine residue in the active site of a human class Alpha glutathione transferaseFEBS Letters, 1991
- Heterologous expression of the allelic variant mu-class glutathione transferases μ and ψBiochemical Journal, 1991
- Effects of directed mutagenesis on conserved arginine residues in a human Class Alpha glutathione transferaseBiochemical Journal, 1991
- Spectroscopic and kinetic evidence for the thiolate anion of glutathione at the active site of glutathione S-transferaseBiochemistry, 1989
- Glutathione Transferases—Structure and Catalytic ActivitCritical Reviews in Biochemistry, 1988
- STRUCTURE AND EXPRESSION OF A HUMAN CLASS PI-GLUTATHIONE S-TRANSFERASE MESSENGER-RNA1987
- The separation of glutathione transferase subunits by using reverse-phase high-pressure liquid chromatographyBiochemical Journal, 1987
- Identification of three classes of cytosolic glutathione transferase common to several mammalian species: correlation between structural data and enzymatic properties.Proceedings of the National Academy of Sciences, 1985
- A simplification of the protein assay method of Lowry et al. which is more generally applicableAnalytical Biochemistry, 1977