Literature DB >> 2540822

Switching kinetic mechanism and putative proton donor by directed mutagenesis of glutathione reductase.

A Berry1, N S Scrutton, R N Perham.   

Abstract

By directed mutagenesis of the cloned Escherichia coli gor gene encoding the flavoprotein glutathione reductase, Tyr-177 (the residue corresponding to Tyr-197 in the NADPH-binding pocket of the homologous human enzyme) was changed to phenylalanine (Y177F), serine (Y177S), and glycine (Y177G). The catalytic activity of the Y177F mutant was very similar to that of the wild-type enzyme, but that of the Y177S and Y177G mutants was substantially diminished. However, all three mutants retained the ability to protect the reduced flavin from adventitious oxidation, indicating that Tyr-177 does not act as a simple "lid" on the NADPH-binding pocket and that the protection of the reduced enzyme must be due largely to burial of the isoalloxazine ring in the protein. The wild-type enzyme and Y177F mutant displayed ping-pong kinetics, but the Y177S and Y177G mutants appeared to have switched to an ordered sequential mechanism. This could be explained by supposing that the enzyme normally functions by a hybrid kinetic mechanism and that the Y177S and Y177G mutations diverted flux from the ping-pong loop favored by the wild-type enzyme to an ordered sequential loop. The necessary change in the partitioning of the common E-NADPH intermediate could be caused by a slowing of the formation of the EH2 intermediate on the ping-pong loop, or by the observed concomitant fall in the Km for glutathione favoring flux through the ordered sequential loop. In another experiment, His-439, thought to act as a proton donor/acceptor in the glutathione-binding pocket, was mutated to a glutamine residue.(ABSTRACT TRUNCATED AT 250 WORDS)

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Year:  1989        PMID: 2540822     DOI: 10.1021/bi00429a047

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  8 in total

1.  Flavin fluorescence dynamics and photoinduced electron transfer in Escherichia coli glutathione reductase.

Authors:  P A van den Berg; A van Hoek; C D Walentas; R N Perham; A J Visser
Journal:  Biophys J       Date:  1998-04       Impact factor: 4.033

2.  Engineering the substrate specificity of glutathione reductase toward that of trypanothione reduction.

Authors:  G B Henderson; N J Murgolo; J Kuriyan; K Osapay; D Kominos; A Berry; N S Scrutton; N W Hinchliffe; R N Perham; A Cerami
Journal:  Proc Natl Acad Sci U S A       Date:  1991-10-01       Impact factor: 11.205

3.  Evidence for a novel mechanism of time-resolved flavin fluorescence depolarization in glutathione reductase.

Authors:  Petra A W van den Berg; Arie van Hoek; Antonie J W G Visser
Journal:  Biophys J       Date:  2004-10       Impact factor: 4.033

4.  Glutathionylspermidine metabolism in Escherichia coli.

Authors:  K Smith; A Borges; M R Ariyanayagam; A H Fairlamb
Journal:  Biochem J       Date:  1995-12-01       Impact factor: 3.857

5.  Altering kinetic mechanism and enzyme stability by mutagenesis of the dimer interface of glutathione reductase.

Authors:  A Bashir; R N Perham; N S Scrutton; A Berry
Journal:  Biochem J       Date:  1995-12-01       Impact factor: 3.857

6.  Metals are directly involved in the redox interconversion of Saccharomyces cerevisiae glutathione reductase.

Authors:  J Peinado; J Florindo; C García-Alfonso; E Martínez-Galisteo; A Llobell; J López-Barea
Journal:  Mol Cell Biochem       Date:  1991-03-13       Impact factor: 3.396

7.  Designing Flavoprotein-GFP Fusion Probes for Analyte-Specific Ratiometric Fluorescence Imaging.

Authors:  Devin A Hudson; Jeffrey L Caplan; Colin Thorpe
Journal:  Biochemistry       Date:  2018-01-31       Impact factor: 3.162

8.  A genetically encoded tool for manipulation of NADP+/NADPH in living cells.

Authors:  Valentin Cracan; Denis V Titov; Hongying Shen; Zenon Grabarek; Vamsi K Mootha
Journal:  Nat Chem Biol       Date:  2017-08-07       Impact factor: 15.040

  8 in total

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