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Redesign of the Substrate Specificity of Escherichia Coli Aspartate Aminotransferase to That of Escherichia Coli Tyrosine Aminotransferase by Homology Modeling and Site-directed Mutagenesis

Overview
Journal Protein Sci
Specialty Biochemistry
Date 1995 Sep 1
PMID 8528073
Citations 24
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Abstract

Although several high-resolution X-ray crystallographic structures have been determined for Escherichia coli aspartate aminotransferase (eAATase), efforts to crystallize E. coli tyrosine aminotransferase (eTATase) have been unsuccessful. Sequence alignment analyses of eTATase and eAATase show 43% sequence identity and 72% sequence similarity, allowing for conservative substitutions. The high similarity of the two sequences indicates that both enzymes must have similar secondary and tertiary structures. Six active site residues of eAATase were targeted by homology modeling as being important for aromatic amino acid reactivity with eTATase. Two of these positions (Thr 109 and Asn 297) are invariant in all known aspartate aminotransferase enzymes, but differ in eTATase (Ser 109 and Ser 297). The other four positions (Val 39, Lys 41, Thr 47, and Asn 69) line the active site pocket of eAATase and are replaced by amino acids with more hydrophobic side chains in eTATase (Leu 39, Tyr 41, Ile 47, and Leu 69). These six positions in eAATase were mutated by site-directed mutagenesis to the corresponding amino acids found in eTATase in an attempt to redesign the substrate specificity of eAATase to that of eTATase. Five combinations of the individual mutations were obtained from mutagenesis reactions. The redesigned eAATase mutant containing all six mutations (Hex) displays second-order rate constants for the transamination of aspartate and phenylalanine that are within an order of magnitude of those observed for eTATase. Thus, the reactivity of eAATase with phenylalanine was increased by over three orders of magnitude without sacrificing the high transamination activity with aspartate observed for both enzymes.(ABSTRACT TRUNCATED AT 250 WORDS)

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References
1.
JENKINS W, Dari L . Glutamic-aspartic transaminase. IX. Equilibria with glutamate and alpha-ketoglutarate. J Biol Chem. 1966; 241(12):2845-54. View

2.
Onuffer J, Ton B, Klement I, KIRSCH J . The use of natural and unnatural amino acid substrates to define the substrate specificity differences of Escherichia coli aspartate and tyrosine aminotransferases. Protein Sci. 1995; 4(9):1743-9. PMC: 2143219. DOI: 10.1002/pro.5560040909. View

3.
Umbarger H . Amino acid biosynthesis and its regulation. Annu Rev Biochem. 1978; 47:532-606. DOI: 10.1146/annurev.bi.47.070178.002533. View

4.
KIRSCH J, Eichele G, Ford G, Vincent M, Jansonius J, Gehring H . Mechanism of action of aspartate aminotransferase proposed on the basis of its spatial structure. J Mol Biol. 1984; 174(3):497-525. DOI: 10.1016/0022-2836(84)90333-4. View

5.
Estell D, Graycar T, Wells J . Engineering an enzyme by site-directed mutagenesis to be resistant to chemical oxidation. J Biol Chem. 1985; 260(11):6518-21. View