Tyr115, gln165 and trp209 contribute to the 1, 2-epoxy-3-(p-nitrophenoxy)propane-conjugating activity of glutathione S-transferase cGSTM1-1. 2000

M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
Institute of Molecular Biology, Academia Sinica, Taipei, Taiwan, 11529, ROC.

We investigated the epoxidase activity of a class mu glutathione S-transferase (cGSTM1-1), using 1,2-epoxy-3-(p-nitrophenoxy)propane (EPNP) as substrate. Trp209 on the C-terminal tail, Arg107 on the alpha4 helix, Asp161 and Gln165 on the alpha6 helix of cGSTM1-1 were selected for mutagenesis and kinetic studies. A hydrophobic side-chain at residue 209 is needed for the epoxidase activity of cGSTM1-1. Replacing Trp209 with histidine, isoleucine or proline resulted in a fivefold to 28-fold decrease in the k(cat)(app) of the enzyme, while a modest 25 % decrease in the k(cat)(app) was observed for the W209F mutant. The rGSTM1-1 enzyme has serine at the correponding position. The k(cat)(app) of the S209W mutant is 2. 5-fold higher than that of the wild-type rGSTM1-1. A charged residue is needed at position 107 of cGSTM1-1. The K(m)(app)(GSH) of the R107L mutant is 38-fold lower than that of the wild-type enzyme. On the contrary, the R107E mutant has a K(m)(app)(GSH) and a k(cat)(app) that are 11-fold and 35 % lower than those of the wild-type cGSTM1-1. The substitutions of Gln165 with Glu or Leu have minimal effect on the affinity of the mutants towards GSH or EPNP. However, a discernible reduction in k(cat)(app) was observed. Asp161 is involved in maintaining the structural integrity of the enzyme. The K(m)(app)(GSH) of the D161L mutant is 616-fold higher than that of the wild-type enzyme. In the hydrogen/deuterium exchange experiments, this mutant has the highest level of deuteration among all the proteins tested. We also elucidated the structure of cGSTM1-1 co-crystallized with the glutathionyl-conjugated 1, 2-epoxy-3-(p-nitrophenoxy)propane (EPNP) at 2.8 A resolution. The product found in the active site was 1-hydroxy-2-(S-glutathionyl)-3-(p-nitrophenoxy)propane, instead of the conventional 2-hydroxy isomer. The EPNP moiety orients towards Arg107 and Gln165 in dimer AB, and protrudes into a hydrophobic region formed by the loop connecting beta1 and alpha1 and part of the C-terminal tail in dimer CD. The phenoxyl ring forms strong ring stacking with the Trp209 side-chain in dimer CD. We hypothesize that these two conformations represent the EPNP moiety close to the initial and final stages of the reaction mechanism, respectively.

UI MeSH Term Description Entries
D007700 Kinetics The rate dynamics in chemical or physical systems.
D008958 Models, Molecular Models used experimentally or theoretically to study molecular shape, electronic properties, or interactions; includes analogous molecules, computer-generated graphics, and mechanical structures. Molecular Models,Model, Molecular,Molecular Model
D009154 Mutation Any detectable and heritable change in the genetic material that causes a change in the GENOTYPE and which is transmitted to daughter cells and to succeeding generations. Mutations
D009596 Nitrophenols PHENOLS carrying nitro group substituents. Nitrophenol
D010088 Oxidoreductases The class of all enzymes catalyzing oxidoreduction reactions. The substrate that is oxidized is regarded as a hydrogen donor. The systematic name is based on donor:acceptor oxidoreductase. The recommended name will be dehydrogenase, wherever this is possible; as an alternative, reductase can be used. Oxidase is only used in cases where O2 is the acceptor. (Enzyme Nomenclature, 1992, p9) Dehydrogenases,Oxidases,Oxidoreductase,Reductases,Dehydrogenase,Oxidase,Reductase
D011487 Protein Conformation The characteristic 3-dimensional shape of a protein, including the secondary, supersecondary (motifs), tertiary (domains) and quaternary structure of the peptide chain. PROTEIN STRUCTURE, QUATERNARY describes the conformation assumed by multimeric proteins (aggregates of more than one polypeptide chain). Conformation, Protein,Conformations, Protein,Protein Conformations
D011522 Protons Stable elementary particles having the smallest known positive charge, found in the nuclei of all elements. The proton mass is less than that of a neutron. A proton is the nucleus of the light hydrogen atom, i.e., the hydrogen ion. Hydrogen Ions,Hydrogen Ion,Ion, Hydrogen,Ions, Hydrogen,Proton
D011994 Recombinant Proteins Proteins prepared by recombinant DNA technology. Biosynthetic Protein,Biosynthetic Proteins,DNA Recombinant Proteins,Recombinant Protein,Proteins, Biosynthetic,Proteins, Recombinant DNA,DNA Proteins, Recombinant,Protein, Biosynthetic,Protein, Recombinant,Proteins, DNA Recombinant,Proteins, Recombinant,Recombinant DNA Proteins,Recombinant Proteins, DNA
D002645 Chickens Common name for the species Gallus gallus, the domestic fowl, in the family Phasianidae, order GALLIFORMES. It is descended from the red jungle fowl of SOUTHEAST ASIA. Gallus gallus,Gallus domesticus,Gallus gallus domesticus,Chicken
D003903 Deuterium The stable isotope of hydrogen. It has one neutron and one proton in the nucleus. Deuterons,Hydrogen-2,Hydrogen 2

Related Publications

M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
April 1978, Xenobiotica; the fate of foreign compounds in biological systems,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
April 1995, Biochimica et biophysica acta,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
August 1999, Biochemical and biophysical research communications,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
November 1997, Biochemical Society transactions,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
November 1974, Canadian journal of biochemistry,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
March 1977, Journal of biochemistry,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
November 1992, Archives of biochemistry and biophysics,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
February 1992, The Biochemical journal,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
June 1953, The Journal of pharmacy and pharmacology,
M K Chern, and T C Wu, and C H Hsieh, and C C Chou, and L F Liu, and I C Kuan, and Y H Yeh, and C D Hsiao, and M F Tam
February 1983, Clinical immunology and immunopathology,
Copied contents to your clipboard!