Literature DB >> 1324708

Genetic engineering of redox donor sites: measurement of intracomplex electron transfer between ruthenium-65-cytochrome b5 and cytochrome c.

A Willie1, P S Stayton, S G Sligar, B Durham, F Millett.   

Abstract

The de novo design and synthesis of ruthenium-labeled cytochrome b5 that is optimized for the measurement of intracomplex electron transfer to cytochrome c are described. A single cysteine was substituted for Thr-65 of rat liver cytochrome b5 by recombinant DNA techniques [Stayton, P. S., Fisher, M. T., & Sligar, S. G. (1988) J. Biol. Chem. 263, 13544-13548]. The single sulfhydryl group on T65C cytochrome b5 was then labeled with [4-(bromomethyl)-4'-methylbipyridine] (bisbipyridine)ruthenium2+ to form Ru-65-cyt b5. The ruthenium group at Cys-65 is only 12 A from the heme group of cytochrome b5 but is not located at the binding site for cytochrome c. Laser excitation of the complex between Ru-65-cyt b5 and cytochrome c results in electron transfer from the excited state Ru(II*) to the heme group of Ru-65-cyt b5 with a rate constant greater than 10(6) s-1. Subsequent electron transfer from the heme group of Ru-65-cyt b5 to the heme group of cytochrome c is biphasic, with a fast-phase rate constant of (4 +/- 1) x 10(5) s-1 and a slow-phase rate constant of (3 +/- 1) x 10(4) s-1. This suggests that the complex can assume two different conformations with different electron-transfer properties. The reaction becomes monophasic and the rate constant decreases as the ionic strength is increased, indicating dissociation of the complex.(ABSTRACT TRUNCATED AT 250 WORDS)

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Year:  1992        PMID: 1324708     DOI: 10.1021/bi00147a005

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  11 in total

Review 1.  Design of photoactive ruthenium complexes to study electron transfer and proton pumping in cytochrome oxidase.

Authors:  Bill Durham; Francis Millett
Journal:  Biochim Biophys Acta       Date:  2011-09-10

2.  Distance metrics for heme protein electron tunneling.

Authors:  Christopher C Moser; Sarah E Chobot; Christopher C Page; P Leslie Dutton
Journal:  Biochim Biophys Acta       Date:  2008-04-18

Review 3.  Electron transfer from cytochrome b5 to cytochrome c.

Authors:  B Durham; J L Fairris; M McLean; F Millett; J R Scott; S G Sligar; A Willie
Journal:  J Bioenerg Biomembr       Date:  1995-06       Impact factor: 2.945

Review 4.  Biological electron transfer.

Authors:  C C Moser; C C Page; R Farid; P L Dutton
Journal:  J Bioenerg Biomembr       Date:  1995-06       Impact factor: 2.945

5.  A "parallel plate" electrostatic model for bimolecular rate constants applied to electron transfer proteins.

Authors:  J A Watkins; M A Cusanovich; T E Meyer; G Tollin
Journal:  Protein Sci       Date:  1994-11       Impact factor: 6.725

6.  The orientations of cytochrome c in the highly dynamic complex with cytochrome b5 visualized by NMR and docking using HADDOCK.

Authors:  Alexander N Volkov; Davide Ferrari; Jonathan A R Worrall; Alexandre M J J Bonvin; Marcellus Ubbink
Journal:  Protein Sci       Date:  2005-02-02       Impact factor: 6.725

Review 7.  Guidelines for tunneling in enzymes.

Authors:  Christopher C Moser; J L Ross Anderson; P Leslie Dutton
Journal:  Biochim Biophys Acta       Date:  2010-05-10

Review 8.  Electron transfer between cytochrome c and cytochrome c peroxidase.

Authors:  F Millett; M A Miller; L Geren; B Durham
Journal:  J Bioenerg Biomembr       Date:  1995-06       Impact factor: 2.945

Review 9.  Design and use of photoactive ruthenium complexes to study electron transfer within cytochrome bc1 and from cytochrome bc1 to cytochrome c.

Authors:  Francis Millett; Jeffrey Havens; Sany Rajagukguk; Bill Durham
Journal:  Biochim Biophys Acta       Date:  2012-09-15

Review 10.  An antiapoptotic neuroprotective role for neuroglobin.

Authors:  Thomas Brittain; Joanna Skommer; Subadhip Raychaudhuri; Nigel Birch
Journal:  Int J Mol Sci       Date:  2010-05-27       Impact factor: 5.923

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