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Spectral analysis of the bc1 complex components in situ: Beyond the traditional difference approach
Authors:Vladimir P. Shinkarev  Antony R. Crofts  Colin A. Wraight
Affiliation:Department of Biochemistry, University of Illinois at Urbana - Champaign, 156 Davenport Hall, 607 South Mathews Avenue, Urbana, IL 6l80l, USA
Abstract:The cytochrome (cyt) bc1 complex (ubiquinol: cytochrome c oxidoreductase) is the central enzyme of mitochondrial and bacterial electron-transport chains. It is rich in prosthetic groups, many of which have significant but overlapping absorption bands in the visible spectrum. The kinetics of the cytochrome components of the bc1 complex are traditionally followed by using the difference of absorbance changes at two or more different wavelengths. This difference-wavelength (DW) approach has been used extensively in the development and testing of the Q-cycle mechanism of the bc1 complex in Rhodobacter sphaeroides chromatophores. However, the DW approach does not fully compensate for spectral interference from other components, which can significantly distort both amplitudes and kinetics. Mechanistic elaboration of cyt bc1 turnover requires an approach that overcomes this limitation. Here, we compare the traditional DW approach to a least squares (LS) analysis of electron transport, based on newly determined difference spectra of all individual components of cyclic electron transport in chromatophores. Multiple sets of kinetic traces, measured at different wavelengths in the absence and presence of specific inhibitors, were analyzed by both LS and DW approaches. Comparison of the two methods showed that the DW approach did not adequately correct for the spectral overlap among the components, and was generally unreliable when amplitude changes for a component of interest were small. In particular, it was unable to correct for extraneous contributions to the amplitudes and kinetics of cyt bL. From LS analysis of the chromophoric components (RC, ctot, bH and bL), we show that while the Q-cycle model remains firmly grounded, quantitative reevaluation of rates, amplitudes, delays, etc., of individual components is necessary. We conclude that further exploration of mechanisms of the bc1 complex, will require LS deconvolution for reliable measurement of the kinetics of individual components of the complex in situ.
Keywords:CCCP, carbonyl cyanide m-chlorophenylhydrazone   cyt, cytochrome   DM, dodecyl maltoside   DW, difference-wavelength   ISP, Rieske iron-sulfur protein   LS, least squares   RC, photosynthetic reaction center   Qi, Qo, quinone reducing and quinol oxidizing sites of bc1 complex, respectively   bL and bH, low- and high-potential hemes of cytochrome b, respectively   Rb., Rhodobacter   DAD, 2,3,5,6-tetramethyl-p-phenylenediamine
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