Role of Deprotonation Events in Ubihydroquinone:Cytochrome c Oxidoreductase from Bovine Heart and Yeast Mitochondria
- 1 September 1997
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 36 (37), 11234-11240
- https://doi.org/10.1021/bi970968g
Abstract
The pH dependence of bovine and yeast cytochrome bc1 complex catalyzing electron transfer from ubi- and plastohydroquinone to cytochrome c have been analyzed. The pH dependence of the steady-state rate was found to be governed by two protonable groups, one of which (pK ≈ 6.6) has to be deprotonated while the other (pK ≈ 9.2) has to be protonated to allow catalysis. Using ubideuteroquinone instead of ubihydroquinone as a substrate resulted in 1.4- and 1.7-fold lower steady-state rates for the bovine and yeast enzymes, respectively. The activation energy at pH 8.0 was 33 kJ/mol for the bovine and 44 kJ/mol for the yeast enzyme and exhibited a linear decrease between pH 5.4 and 9.2. For ubihydroquinone the slope was very close to a value of −5.7 kJ/mol expected if the activation energy depended on a single deprotonation event. When plastohydroquinone was used instead, the slope more than doubled, indicating that a second deprotonation contributed to the activation barrier with this nonphysiological substrate. In contrast to previous kinetic models for the cytochrome bc1 complex, which propose that the activation barrier is associated with the formation of ubisemiquinone at the ubihydroquinone oxidation center, our results strongly suggest that the best approximation of the transition state is the singly deprotonated form of ubihydroquinone. This supports the recently proposed proton-gated charge transfer mechanism, which has control of catalysis by the first deprotonation of ubihydroquinone as one of its key features [Brandt, U. (1996) FEBS Lett.387, 1−6]. All results reported here can be rationalized in a straightforward way based on other aspects of the same hypothesis.This publication has 14 references indexed in Scilit:
- Bifurcated ubihydroquinone oxidation in the cytochrome bc1 complex by proton‐gated charge transferFEBS Letters, 1996
- The Molecular Basis for the Natural Resistance of the Cytochrome bc1 Complex from Strobilurin‐Producing Basidiomycetes to Center QP InhibitorsEuropean Journal of Biochemistry, 1996
- Analysis of cytochrome‐b amino acid residues forming the contact face with the iron‐sulfur subunit of ubiquinol:cytochrome‐c reductase in Saccharomyces cerevisiaeEuropean Journal of Biochemistry, 1994
- The Protonmotive Q Cycle in Mitochondria and BacteriaCritical Reviews in Biochemistry and Molecular Biology, 1994
- Point mutation in cytochrome b of yeast ubihydroquinone:cytochrome‐c oxidoreductase causing myxothiazol resistance and facilitated dissociation of the iron‐sulfur subunitEuropean Journal of Biochemistry, 1992
- How rapid are the internal reactions of the ubiquinol:cytochrome c 2 oxidoreductase?Photosynthesis Research, 1989
- Reconstitution of the Ubiquinol: Cytochrome c Reductase from a bc1 Subcomplex and the 'Rieske' Iron-Sulfur Protein Isolated by a New MethodEuropean Journal of Biochemistry, 1983
- The protonmotive Q cycle: A general formulationFEBS Letters, 1975
- Partial Resolution of the Enzymes Catalyzing Oxidative PhosphorylationJournal of Biological Chemistry, 1971
- An Algorithm for Least-Squares Estimation of Nonlinear ParametersJournal of the Society for Industrial and Applied Mathematics, 1963