Effects of mutations in tyrosine hydroxylase associated with progressive dystonia on the activity and stability of the protein
- 1 October 2004
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 58 (1) , 14-21
- https://doi.org/10.1002/prot.20293
Abstract
Tyrosine hydroxylase (TyrH) catalyzes the conversion of tyrosine to dihydroxyphenylalanine (DOPA), the rate‐limiting step in the biosynthesis of dopamine. Four mutations in the TyrH gene have recently been described in cases of autosomal recessive DOPA‐responsive dystonia (Swaans et al., Ann Hum Genet 2000;64:25–31). All four are predicted to result in changes in single amino acid residues in the catalytic domain of the protein: T245P, T283M, R306H, and T463M. To determine the effects of these mutations on the molecular properties of the enzyme, mutant proteins containing the individual single amino acid changes have been expressed in bacteria and purified. Only the T283M mutation results in a decrease in the enzyme kcat value, while the T245P enzyme has a slightly higher value than the wild‐type enzyme. The only case in which a Km value for either tyrosine or tetrahydrobiopterin is perturbed is the T245P enzyme, for which the Km value for tyrosine has increased about 50%. In contrast to the minor effects of the mutations on enzyme activity, the stability is decreased significantly by the mutations. The R306H and T283M enzymes are the least stable, losing activity 30‐ and 50‐fold more rapidly than the wild‐type enzyme. The apparent Tm value for unfolding was decreased by 3.9, 8.2, and 7.2° for the T245P, R306H, and T463M enzymes, while the T283M enzyme was too unstable for measurement of a Tm value. The results establish that the physiological effects of the mutations are primarily due to the decreased stability of the mutant proteins rather than decreases in their intrinsic activities. Proteins 2005.Keywords
This publication has 32 references indexed in Scilit:
- Effects of phosphorylation by protein kinase A on binding of catecholamines to the human tyrosine hydroxylase isoformsJournal of Neurochemistry, 2004
- Mutation of Serine 395 of Tyrosine Hydroxylase Decouples Oxygen−Oxygen Bond Cleavage and Tyrosine HydroxylationBiochemistry, 2000
- The introduction of strain and its effects on the structure and stability of T4 lysozymeJournal of Molecular Biology, 2000
- Effects of Phosphorylation of Serine 40 of Tyrosine Hydroxylase on Binding of Catecholamines: Evidence for a Novel Regulatory MechanismBiochemistry, 1998
- Identification of the Intersubunit Binding Region in Rat Tyrosine HydroxylaseBiochemical and Biophysical Research Communications, 1993
- Expression and characterization of catalytic and regulatory domains of rat tyrosine hydroxylaseProtein Science, 1993
- Steady-state kinetic mechanism of rat tyrosine hydroxylaseBiochemistry, 1991
- Soluble tyrosine hydroxylase (tyrosine 3-monooxygenase) from bovine adrenal medulla: Large-scale purification and physicochemical propertiesBiochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1988
- Contributions of hydrogen bonds of Thr 157 to the thermodynamic stability of phage T4 lysozymeNature, 1987
- Isolation and characterization of the human tyrosine hydroxylase gene: identification of 5' alternative splice sites responsible for multiple mRNAsBiochemistry, 1987