Mössbauer, Electron‐Paramagnetic‐Resonance and X‐ray‐Absorption Fine‐Structure Studies of the Iron Environment in Recombinant Human Tyrosine Hydroxylase
- 1 October 1996
- journal article
- Published by Wiley in European Journal of Biochemistry
- Vol. 241 (2) , 432-439
- https://doi.org/10.1111/j.1432-1033.1996.00432.x
Abstract
Isoforms (1-4) of human tyrosine hydroxylase (TH) have been expressed in Escherichia coli and purified as apoenzymes (metal-free). Apo-human TH binds 1.0 atom Fe(II)/enzyme subunit, and iron binding is associated with an immediate and dramatic (40-fold) increase in specific activity. For X-ray absorption fine structure (XAFS) and electron paramagnetic resonance (EPR) measurements the apoenzyme was reconstituted with 56Fe and for Mössbauer measurements with 57Fe. XAFS measurements at the Fe-K edge of human TH were performed on the native form [Fe(II)-human TH], as well as after addition of stoichiometric amounts of the substrate tetrahydropterin, the inhibitor dopamine and of H2O2. The addition of dopamine or H2O2 oxidizes the ferrous iron of the native human TH to the ferric state. In both redox states the iron is octahedrally coordinated by low-Z backscatterers, thus sulfur coordination can be excluded. From the multiple scattering analysis of the EXAFS region is was surmised that part of the iron coordination is due to (3 +/- 1) imidazols. Addition of tetrahydropterin does not significantly change the iron coordination of the Fe(II) enzyme. The Mössbauer results confirm the valence states and the octahedral coordination of iron as well as the exclusion of sulfur ligation. Both the EPR spectra and the Mössbauer magnetic hyperfine pattern of dopamine- and H2O2-treated native human TH, were analyzed with the spin-Hamiltonian formalism. This analysis provides significantly different features for the two forms of human TH: the ferric iron (S = 5/2) of the H2O2-treated form exhibits a rhombic environment while that of the dopamine-treated form exhibits near-axial symmetry. The specific spectroscopic signature of dopamine-treated human TH, including that of an earlier resonance-Raman study [Michaud-Soret, I., Andersson, K. K., Que, L. Jr & Haavik, J. (1995) Biochemistry 34, 5504-5510] is most likely due to the bidentate binding of dopamine to iron.Keywords
This publication has 30 references indexed in Scilit:
- Resonance Raman Studies of Catecholate and Phenolate Complexes of Recombinant Human Tyrosine HydroxylaseBiochemistry, 1995
- Tyrosine HydroxylasePublished by Wiley ,1995
- X-ray Absorption Studies on Catechol 2,3-Dioxygenase from Pseudomonas putida MT2Biochemistry, 1994
- Recombinant human tyrosine hydroxylase isozymesEuropean Journal of Biochemistry, 1991
- The metal requirement of rat tyrosine hydroxylaseBiochemical and Biophysical Research Communications, 1989
- Fe(II)‐substituted horse liver alcohol dehydrogenase, a model for non‐heme iron enzymesEuropean Journal of Biochemistry, 1989
- Adduct formation between the cupric site of phenylalanine hydroxylase from Chromobacterium violaceum and 6,7-dimethyltetrahydropterinBiochemistry, 1987
- Absolute energy calibration of X-ray radiation from synchrotron sourcesJournal of Applied Crystallography, 1985
- Reductive activation of phenylalanine hydroxylase and its effect on the redox state of the non-heme ironBiochemistry, 1984
- A comparative assessment of the zinc–protein coordination in 2Zn–insulin as determined by X-ray absorption fine structure (EXAFS) and X-ray crystallographyProceedings of the Royal Society of London. B. Biological Sciences, 1983