Literature DB >> 11903050

Expression, purification and characterization of human glutamate dehydrogenase (GDH) allosteric regulatory mutations.

Jie Fang1, Betty Y L Hsu, Courtney M MacMullen, Mortimer Poncz, Thomas J Smith, Charles A Stanley.   

Abstract

Glutamate dehydrogenase (GDH) catalyses the reversible oxidative deamination of l-glutamate to 2-oxoglutarate in the mitochondrial matrix. In mammals, this enzyme is highly regulated by allosteric effectors. The major allosteric activator and inhibitor are ADP and GTP, respectively; allosteric activation by leucine may play an important role in amino acid-stimulated insulin secretion. The physiological significance of this regulation has been highlighted by the identification of children with an unusual hyperinsulinism/hyperammonaemia syndrome associated with dominant mutations in GDH that cause a loss in GTP inhibition. In order to determine the effects of these mutations on the function of the human GDH homohexamer, we studied the expression, purification and characterization of two of these regulatory mutations (H454Y, which affects the putative GTP-binding site, and S448P, which affects the antenna region) and a mutation designed to alter the putative binding site for ADP (R463A). The sensitivity to GTP inhibition was impaired markedly in the purified H454Y (ED(50), 210 microM) and S448P (ED(50), 3.1 microM) human GDH mutants compared with the wild-type human GDH (ED(50), 42 nM) or GDH isolated from heterozygous patient cells (ED(50), 290 and 280 nM, respectively). Sensitivity to ADP or leucine stimulation was unaffected by these mutations, confirming that they interfere specifically with the inhibitory GTP-binding site. Conversely, the R463A mutation completely eliminated ADP activation of human GDH, but had little effect on either GTP inhibition or leucine activation. The effects of these three mutations on ATP regulation indicated that this nucleotide inhibits human GDH through binding of its triphosphate tail to the GTP site and, at higher concentrations, activates the enzyme through binding of the nucleotide to the ADP site. These data confirm the assignment of the GTP and ADP allosteric regulatory sites on GDH based on X-ray crystallography and provide insight into the structural mechanisms involved in positive and negative allosteric control and in inter-subunit co-operativity of human GDH.

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Year:  2002        PMID: 11903050      PMCID: PMC1222454          DOI: 10.1042/0264-6021:3630081

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  27 in total

1.  Hyperinsulinism-hyperammonemia syndrome caused by mutant glutamate dehydrogenase accompanied by novel enzyme kinetics.

Authors:  T Yorifuji; J Muroi; A Uematsu; H Hiramatsu; T Momoi
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Authors:  C A Stanley; Y K Lieu; B Y Hsu; A B Burlina; C R Greenberg; N J Hopwood; K Perlman; B H Rich; E Zammarchi; M Poncz
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4.  [Regulation of the activity of glutamate dehydrogenase by effectors GTP and ADP: study by means of "stopped flow"].

Authors:  M Iwatsubo; D Pantaloni
Journal:  Bull Soc Chim Biol (Paris)       Date:  1967-12-18

5.  The crystal structure of glutamate dehydrogenase from Clostridium symbiosum at 0.6 nm resolution.

Authors:  D W Rice; P J Baker; G W Farrants; D P Hornby
Journal:  Biochem J       Date:  1987-03-15       Impact factor: 3.857

Review 6.  L-glutamate dehydrogenases: distribution, properties and mechanism.

Authors:  R C Hudson; R M Daniel
Journal:  Comp Biochem Physiol B       Date:  1993-12

7.  Investigation of the effects of crosslinking glutamate dehydrogenase with dimethyl pimelimidate.

Authors:  T J Smith; J E Bell
Journal:  Arch Biochem Biophys       Date:  1985-05-15       Impact factor: 4.013

8.  Regulation of bovine glutamate dehydrogenase. The effects of pH and ADP.

Authors:  J Bailey; E T Bell; J E Bell
Journal:  J Biol Chem       Date:  1982-05-25       Impact factor: 5.157

9.  The structure of Pyrococcus furiosus glutamate dehydrogenase reveals a key role for ion-pair networks in maintaining enzyme stability at extreme temperatures.

Authors:  K S Yip; T J Stillman; K L Britton; P J Artymiuk; P J Baker; S E Sedelnikova; P C Engel; A Pasquo; R Chiaraluce; V Consalvi
Journal:  Structure       Date:  1995-11-15       Impact factor: 5.006

10.  Activation of bovine liver glutamate dehydrogenase by covalent reaction of adenosine 5'-O-[S-(4-bromo-2,3-dioxobutyl)thiophosphate] with arginine-459 at an ADP regulatory site.

Authors:  K O Wrzeszczynski; R F Colman
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