Literature DB >> 23368961

Mutagenesis of a specificity-determining residue in tyrosine hydroxylase establishes that the enzyme is a robust phenylalanine hydroxylase but a fragile tyrosine hydroxylase.

S Colette Daubner1, Audrey Avila, Johnathan O Bailey, Dimitrios Barrera, Jaclyn Y Bermudez, David H Giles, Crystal A Khan, Noel Shaheen, Janie Womac Thompson, Jessica Vasquez, Susan P Oxley, Paul F Fitzpatrick.   

Abstract

The aromatic amino acid hydroxylases tyrosine hydroxylase (TyrH) and phenylalanine hydroxylase (PheH) have essentially identical active sites; however, PheH is nearly incapable of hydroxylating tyrosine, while TyrH can readily hydroxylate both tyrosine and phenylalanine. Previous studies have indicated that Asp425 of TyrH is important in determining the substrate specificity of that enzyme [Daubner, S. C., Melendez, J., and Fitzpatrick, P. F. (2000) Biochemistry 39, 9652-9661]. Alanine-scanning mutagenesis of amino acids 423-427, a mobile loop containing Asp425, shows that only mutagenesis of Asp425 alters the activity of the enzyme significantly. Saturation mutagenesis of Asp425 results in large (up to 10(4)) decreases in the V(max) and V(max)/K(tyr) values for tyrosine hydroxylation, but only small decreases or even increases in the V(max) and V(max)/K(phe) values for phenylalanine hydroxylation. The decrease in the tyrosine hydroxylation activity of the mutant proteins is due to an uncoupling of tetrahydropterin oxidation from amino acid hydroxylation with tyrosine as the amino acid substrate. In contrast, with the exception of the D425W mutant, the extent of coupling of tetrahydropterin oxidation and amino acid hydroxylation is unaffected or increases with phenylalanine as the amino acid substrate. The decrease in the V(max) value with tyrosine as the substrate shows a negative correlation with the hydrophobicity of the amino acid residue at position 425. The results are consistent with a critical role of Asp425 being to prevent a hydrophobic interaction that results in a restricted active site in which hydroxylation of tyrosine does not occur.

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Year:  2013        PMID: 23368961      PMCID: PMC3584195          DOI: 10.1021/bi400031n

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


  55 in total

1.  The nature of the accessible and buried surfaces in proteins.

Authors:  C Chothia
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2.  Full-length cDNA for rabbit tryptophan hydroxylase: functional domains and evolution of aromatic amino acid hydroxylases.

Authors:  H E Grenett; F D Ledley; L L Reed; S L Woo
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3.  The role of solvent polarity in the free energy of transfer of amino acid side chains from water to organic solvents.

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Journal:  J Biol Chem       Date:  1986-06-05       Impact factor: 5.157

4.  The interpretation of protein structures: total volume, group volume distributions and packing density.

Authors:  F M Richards
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5.  Amino acid side-chain partition energies and distribution of residues in soluble proteins.

Authors:  H R Guy
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6.  Steady-state kinetic mechanism of rat tyrosine hydroxylase.

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Authors:  R A Jensen
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8.  Specificity of amino acids as activators and substrates for phenylalanine hydroxylase.

Authors:  S Kaufman; K Mason
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9.  Homology between phenylalanine and tyrosine hydroxylases reveals common structural and functional domains.

Authors:  F D Ledley; A G DiLella; S C Kwok; S L Woo
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10.  Hydroxylation of 4-methylphenylalanine by rat liver phenylalanine hydroxylase.

Authors:  H U Siegmund; S Kaufman
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