Crystal structures of dialkylglycine decarboxylase inhibitor complexes.

@article{Malashkevich1999CrystalSO,
  title={Crystal structures of dialkylglycine decarboxylase inhibitor complexes.},
  author={Vladimir N. Malashkevich and Pavel Strop and John W. Keller and Johan N. Jansonius and Michael D Toney},
  journal={Journal of molecular biology},
  year={1999},
  volume={294 1},
  pages={
          193-200
        }
}
The crystal structures of four inhibitor complexes of dialkylglycine decarboxylase are reported. The enzyme does not undergo a domain closure, as does aspartate aminotransferase, upon inhibitor binding. Two active-site conformations have been observed in previous structures that differ in alkali metal ion content, and two active-site conformations have been shown to coexist in solution when a single type of metal ion is present. There is no indication of coexisting conformers in the structures… 

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References

SHOWING 1-10 OF 30 REFERENCES
Structural and mechanistic analysis of two refined crystal structures of the pyridoxal phosphate-dependent enzyme dialkylglycine decarboxylase.
TLDR
Two refined structures, differing in alkali metal ion content, of the bifunctional, pyridoxal phosphate-dependent enzyme dialkylglycine decarboxylase (DGD) are presented in detail and models of the L-isovaline and L-alanine external aldimine intermediates suggest mechanisms by which the decar boxylation and transamination reactions could be accomplished within the single active site.
Coexisting kinetically distinguishable forms of dialkylglycine decarboxylase engendered by alkali metal ions.
TLDR
These experiments clearly demonstrate that DGD is a hysteretic enzyme whose conformational distribution is controlled by the identity of the alkali metal ion bound near the active site, and that cooperativity does not play a role in catalysis or regulation.
Crystal structures of true enzymatic reaction intermediates: aspartate and glutamate ketimines in aspartate aminotransferase.
TLDR
The crystal structures of the stable, closed complexes of chicken mitochondrial aspartate aminotransferase with the natural substrates L-aspartate and L-glutamate have been solved and refined and it is suggested that one or more substantially populated, aldehydic intermediates in solution exist in the open conformation.
An alkali metal ion size-dependent switch in the active site structure of dialkylglycine decarboxylase.
TLDR
Investigation of the effects of alkali metal ions on DGD activity and crystal structures reveals a striking correlation between active site structure and enzymatic activity, and it is proposed that the rigid site 2 structure results in a pronounced selectivity for Na+ ions.
Dialkylglycine decarboxylase structure: bifunctional active site and alkali metal sites.
TLDR
Model building suggests that a single cleavage site catalyzes both decarboxylation and transamination by maximizing stereoelectronic advantages and providing electrostatic and general base catalysis.
Crystal structure of human recombinant ornithine aminotransferase.
TLDR
In patients suffering from gyrate atrophy, a recessive hereditary genetic disorder that can cause blindness in humans, ornithine aminotransferase activity is lacking, and structure-based sequence comparisons with related transaminases in this work support that view.
Crystal structure of glutamate-1-semialdehyde aminomutase: an alpha2-dimeric vitamin B6-dependent enzyme with asymmetry in structure and active site reactivity.
TLDR
The crystal structure of the reduced form of the glutamate-1-semialdehyde aminomutase shows that, despite identical cofactor binding in each monomer, the structural asymmetry at residues 153-181 remains.
Crystal structure of human ornithine aminotransferase complexed with the highly specific and potent inhibitor 5-fluoromethylornithine.
TLDR
Model building studies strongly suggest that the natural substrate l-ornithine, in its external aldimine adduct with the enzyme, makes use of the same recognition site as the inhibitor, which can be explained on the basis of the active site topology.
The synthesis and properties of phosphopyridoxyl amino acids.
Reactions of alternate substrates demonstrate stereoelectronic control of reactivity in dialkylglycine decarboxylase.
TLDR
Kinetic and product analyses of the reactions of dialkylglycine decarboxylase with several alternative substrates support a proposed model for three binding subsites in the active site and predicts the existence of nonproductive binding modes for amino acids, which is proposed to be the ultimate origin of the kcat increase with side-chain size for L-amino acid decar boxylation.
...
1
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3
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