Increased Positive Electrostatic Potential in p-Hydroxybenzoate Hydroxylase Accelerates Hydroxylation but Slows Turnover
- 22 January 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 43 (6) , 1569-1579
- https://doi.org/10.1021/bi030193d
Abstract
Para-hydroxybenzoate hydroxylase is a flavoprotein monooxygenase that catalyzes a reaction in two parts: reduction of the enzyme cofactor, FAD, by NADPH in response to binding p-hydroxybenzoate to the enzyme, and oxidation of reduced FAD with oxygen to form a hydroperoxide, which then oxygenates p-hydroxybenzoate. These different reactions are coordinated through conformational rearrangements of the isoalloxazine ring within the protein structure. In this paper, we examine the effect of increased positive electrostatic potential in the active site upon the catalytic process with the enzyme mutation, Glu49Gln. This mutation removes a negative charge from a conserved buried charge pair. The properties of the Glu49Gln mutant enzyme are consistent with increased positive potential in the active site, but the mutant enzyme is difficult to study because it is unstable. There are two important changes in the catalytic function of the mutant enzyme as compared to the wild-type. First, the rate of hydroxylation of p-hydroxybenzoate by the transiently formed flavin hydroperoxide is an order of magnitude faster than in the wild-type. This result is consistent with one function proposed for the positive potential in the active siteto stabilize the negative C-4a-flavin alkoxide leaving group upon heterolytic fission of the peroxide bond. However, the mutant enzyme is a poorer catalyst than the wild-type enzyme because (unlike wild-type) the binding of p-hydroxybenzoate is a rate-limiting process. Our analysis shows that the mutant enzyme is slow to interconvert between conformations required to bind and release substrate. We conclude that the new open structure found in crystals of the Arg220Gln mutant enzyme [Wang, J., Ortiz-Maldonado, M., Entsch, B., Massey, V., Ballou, D., and Gatti, D. L. (2002) Proc. Natl. Acad. Sci. U.S.A. 99, 608−613] is integral to the process of binding and release of substrate from oxidized enzyme during catalysis.Keywords
This publication has 13 references indexed in Scilit:
- Comparisons of wild-type and mutant flavodoxins from Anacystis nidulans . Structural determinants of the redox potentials 1 1Edited by R. HuberJournal of Molecular Biology, 1999
- Elimination of All Charged Residues in the Vicinity of the Active-site Helix of the Disulfide Oxidoreductase DsbAJournal of Biological Chemistry, 1997
- Roles of electrostatic interaction in proteinsQuarterly Reviews of Biophysics, 1996
- A Second Generation Force Field for the Simulation of Proteins, Nucleic Acids, and Organic MoleculesJournal of the American Chemical Society, 1995
- Structure and mechanism of para‐hydroxybenzoate hydroxylaseThe FASEB Journal, 1995
- Calculating the electrostatic potential of molecules in solution: Method and error assessmentJournal of Computational Chemistry, 1988
- pH dependence of the reoxidation of p-hydroxybenzoate hydroxylase 2,4-dihydroxybenzoate complex.Journal of Biological Chemistry, 1984
- p‐Hydroxybenzoate Hydroxylase from Pseudomonas fluorescensEuropean Journal of Biochemistry, 1983
- Inhibition of p-Hydroxybenzoate Hydroxylase by Anions: Possible Existence of Two Anion-Binding Sites in the Site for Reduced Nicotinamide Adenine Dinucleotide PhosphateThe Journal of Biochemistry, 1983
- Kinetic studies on the reaction of p-hydroxybenzoate hydroxylase. Agreement of steady state and rapid reaction data.Journal of Biological Chemistry, 1979