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Inter-monomer Electron Transfer is Too Slow to Compete with Monomeric Turnover in Bc(1) Complex

Overview
Specialties Biochemistry
Biophysics
Date 2012 Apr 3
PMID 22465023
Citations 11
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Abstract

The homodimeric bc(1) complexes are membrane proteins essential in respiration and photosynthesis. The ~11Å distance between the two b(L)-hemes of the dimer opens the possibility of electron transfer between them, but contradictory reports make such inter-monomer electron transfer controversial. We have constructed in Rhodobacter sphaeroides a heterodimeric expression system similar to those used before, in which the bc(1) complex can be mutated differentially in the two copies of cyt b to test for inter-monomer electron transfer, but found that genetic recombination by cross-over then occurs to produce wild-type homodimer. Selection pressure under photosynthetic growth always favored the homodimer over heterodimeric variants enforcing inter-monomer electron transfer, showing that the latter are not competitive. These results, together with kinetic analysis of myxothiazol titrations, demonstrate that inter-monomer electron transfer does not occur at rates competitive with monomeric turnover. We examine the results from other groups interpreted as demonstrating rapid inter-monomer electron transfer, conclude that similar mechanisms are likely to be in play, and suggest that such claims might need to be re-examined.

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References
1.
Page C, Moser C, Chen X, Dutton P . Natural engineering principles of electron tunnelling in biological oxidation-reduction. Nature. 1999; 402(6757):47-52. DOI: 10.1038/46972. View

2.
San Filippo J, Sung P, Klein H . Mechanism of eukaryotic homologous recombination. Annu Rev Biochem. 2008; 77:229-57. DOI: 10.1146/annurev.biochem.77.061306.125255. View

3.
Trumpower B . A concerted, alternating sites mechanism of ubiquinol oxidation by the dimeric cytochrome bc(1) complex. Biochim Biophys Acta. 2002; 1555(1-3):166-73. DOI: 10.1016/s0005-2728(02)00273-6. View

4.
Mitchell P . Protonmotive redox mechanism of the cytochrome b-c1 complex in the respiratory chain: protonmotive ubiquinone cycle. FEBS Lett. 1975; 56(1):1-6. DOI: 10.1016/0014-5793(75)80098-6. View

5.
Bi X, Liu L . recA-independent DNA recombination between repetitive sequences: mechanisms and implications. Prog Nucleic Acid Res Mol Biol. 1996; 54:253-92. DOI: 10.1016/s0079-6603(08)60365-7. View