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Selective Targeting by a Mechanism-Based Inactivator against Pyridoxal 5'-Phosphate-Dependent Enzymes: Mechanisms of Inactivation and Alternative Turnover.
- Source :
-
Biochemistry [Biochemistry] 2017 Sep 19; Vol. 56 (37), pp. 4951-4961. Date of Electronic Publication: 2017 Sep 06. - Publication Year :
- 2017
-
Abstract
- Potent mechanism-based inactivators can be rationally designed against pyridoxal 5'-phosphate (PLP)-dependent drug targets, such as ornithine aminotransferase (OAT) or γ-aminobutyric acid aminotransferase (GABA-AT). An important challenge, however, is the lack of selectivity toward other PLP-dependent, off-target enzymes, because of similarities in mechanisms of all PLP-dependent aminotransferase reactions. On the basis of complex crystal structures, we investigate the inactivation mechanism of OAT, a hepatocellular carcinoma target, by (1R,3S,4S)-3-amino-4-fluorocyclopentane-1-carboxylic acid (FCP), a known inactivator of GABA-AT. A crystal structure of OAT and FCP showed the formation of a ternary adduct. This adduct can be rationalized as occurring via an enamine mechanism of inactivation, similar to that reported for GABA-AT. However, the crystal structure of an off-target, PLP-dependent enzyme, aspartate aminotransferase (Asp-AT), in complex with FCP, along with the results of attempted inhibition assays, suggests that FCP is not an inactivator of Asp-AT, but rather an alternate substrate. Turnover of FCP by Asp-AT is also supported by high-resolution mass spectrometry. Amid existing difficulties in achieving selectivity of inactivation among a large number of PLP-dependent enzymes, the obtained results provide evidence that a desirable selectivity could be achieved, taking advantage of subtle structural and mechanistic differences between a drug-target enzyme and an off-target enzyme, despite their largely similar substrate binding sites and catalytic mechanisms.
- Subjects :
- 4-Aminobutyrate Transaminase chemistry
4-Aminobutyrate Transaminase metabolism
Aspartate Aminotransferases chemistry
Aspartate Aminotransferases genetics
Aspartate Aminotransferases metabolism
Binding Sites
Catalytic Domain
Crystallography, X-Ray
Cycloleucine chemistry
Cycloleucine metabolism
Cycloleucine pharmacology
Databases, Chemical
Databases, Protein
Enzyme Inhibitors chemistry
Enzyme Inhibitors metabolism
Escherichia coli Proteins antagonists & inhibitors
Escherichia coli Proteins chemistry
Escherichia coli Proteins genetics
Escherichia coli Proteins metabolism
Humans
Ligands
Molecular Conformation
Ornithine-Oxo-Acid Transaminase chemistry
Ornithine-Oxo-Acid Transaminase genetics
Ornithine-Oxo-Acid Transaminase metabolism
Protein Conformation
Pyridoxal Phosphate chemistry
Pyridoxamine chemistry
Pyridoxamine metabolism
Recombinant Proteins chemistry
Recombinant Proteins metabolism
Structural Homology, Protein
Substrate Specificity
4-Aminobutyrate Transaminase antagonists & inhibitors
Aspartate Aminotransferases antagonists & inhibitors
Cycloleucine analogs & derivatives
Enzyme Inhibitors pharmacology
Models, Molecular
Ornithine-Oxo-Acid Transaminase antagonists & inhibitors
Pyridoxal Phosphate metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 1520-4995
- Volume :
- 56
- Issue :
- 37
- Database :
- MEDLINE
- Journal :
- Biochemistry
- Publication Type :
- Academic Journal
- Accession number :
- 28816437
- Full Text :
- https://doi.org/10.1021/acs.biochem.7b00499