Literature DB >> 7217045

Structural requirements of quinone coenzymes for endogenous and dye-mediated coupled electron transport in bacterial photosynthesis.

A Baccarini-Melandri, N Gabellini, B A Melandri, E Hurt, G Hauska.   

Abstract

Electron transport in continuous light has been investigated in chromatophores of Rhodopseudomonas capsulata. Ala pho+, depleted in ubiquinone-10 and subsequently reconstituted with various ubiquinone homologs and analogs. In addition the restoration of electron transport in depleted chromatophores by the artificial redox compounds N-methylphenazonium methosulfate and N,N,N',N'-tetramethyl-p-phenylenediamine was studied. The following pattern of activities was obtained: (1) Reconstitution of cyclic photophosphorylation with ubiquinone-10 was saturated at about 40 ubiquinone molecules per reaction center. (2) Reconstitution by ubiquinone homologs was dependent on the length of the isoprenoid side chain and the amount of residual ubiquinone in the extracted chromatophores. If two or more molecules of ubiquinone-10 per reaction center were retained, all homologs with a side chain longer than two isoprene units were as active as ubiquinone-10 in reconstitution, and the double bonds in the side chain were not required. If less than two molecules per reaction center remained, an unsaturated side chain longer than five units was necessary for full activity. Plastoquinone, alpha-tocopherol, and naphthoquinones of the vitamin K series were relatively inactive in both cases. (3) All ubiquinone homologs, also ubiquinone-1 and -2, could be reduced equally well by the photosynthetic reaction center, as measured by light-induced proton binding in the presence of antimycin A and uncoupler. Plastoquinone was found to be a poor electron acceptor. (4) Photophosphorylation could be reconstituted by N-methylphenazonium methosulfate as well as by N,N,N',N'-tetramethyl-p-phenylenediamine in an antimycin-insensitive way, if more than two ubiquinones per reaction center remained. These compounds were active also in more extensively extracted particles reconstituted with ubiquinone-1, which itself was inactive.

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Year:  1980        PMID: 7217045     DOI: 10.1007/bf00744677

Source DB:  PubMed          Journal:  J Bioenerg Biomembr        ISSN: 0145-479X            Impact factor:   2.945


  25 in total

1.  Picosecond detection of an intermediate in the photochemical reaction of bacterial photosynthesis.

Authors:  M G Rockley; M W Windsor; R J Cogdell; W W Parson
Journal:  Proc Natl Acad Sci U S A       Date:  1975-06       Impact factor: 11.205

2.  Picosecond kinetics of events leading to reaction center bacteriochlorophyll oxidation.

Authors:  K J Kaufmann; P L Dutton; T L Netzel; J S Leigh; P M Rentzepis
Journal:  Science       Date:  1975-06-27       Impact factor: 47.728

Review 3.  Hydroquinone dehydrogenases.

Authors:  F L Crane
Journal:  Annu Rev Biochem       Date:  1977       Impact factor: 23.643

4.  A role for ubiquinone-10 in the b--c2 segment of the photosynthetic bacterial electron transport chain.

Authors:  A Baccarini-Melandri; B A Melandri
Journal:  FEBS Lett       Date:  1977-08-15       Impact factor: 4.124

5.  The kinetics of the redox reactions of ubiquinone related to the electron-transport activity in the respiratory chain.

Authors:  A Kröger; M Klingenberg
Journal:  Eur J Biochem       Date:  1973-04

6.  Identification of an electron acceptor in reaction centers of Rhodopseudomonas spheroides by EPR spectroscopy.

Authors:  G Feher; M Y Okamura; J D McElroy
Journal:  Biochim Biophys Acta       Date:  1972-04-20

7.  Native and artificial energy-conserving sites in cyclic photophosphorylation systems.

Authors:  G Hauska; S Reimer; A Trebst
Journal:  Biochim Biophys Acta       Date:  1974-07-25

8.  Roles of ubiquinone-10 and rhodoquinone in photosynthetic formation of adenosine triphosphate by chromatophores from Rhodospirillum rubrum.

Authors:  S Okayama; N Yamamoto; K Nishikawa; T Horio
Journal:  J Biol Chem       Date:  1968-06-10       Impact factor: 5.157

9.  The function of ubiquinone-10 both in the electron transport system and in the energy conservation system of chromatophores from Rhodospirillum rubrum.

Authors:  N Yamamoto; H Hatakeyama; K Nishikawa; T Horio
Journal:  J Biochem       Date:  1970-04       Impact factor: 3.387

10.  Ubiquinone concentrations in athiorhodaceae grown under various environmental conditions.

Authors:  N G Carr; G Exell
Journal:  Biochem J       Date:  1965-09       Impact factor: 3.857

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  5 in total

Review 1.  Photosynthesis research in Italy: a review.

Authors:  Giorgio Forti; Angela Agostiano; Roberto Barbato; Roberto Bassi; Enrico Brugnoli; Giovanni Finazzi; Flavio M Garlaschi; Robert C Jennings; Bruno Andrea Melandri; Massimo Trotta; Giovanni Venturoli; Giuliana Zanetti; Davide Zannoni; Giuseppe Zucchelli
Journal:  Photosynth Res       Date:  2006-06-06       Impact factor: 3.573

2.  THE ROLE OF THE QUINONE POOL IN THE CYCLIC ELECTRON-TRANSFER CHAIN OF RHODOPSEUDOMONAS SPHAEROIDES: A MODIFIED Q-CYCLE MECHANISM.

Authors:  A R Crofts; S W Meinhardt; K R Jones; M Snozzi
Journal:  Biochim Biophys Acta       Date:  1983-05-23

3.  The reconstitution of oxidative phosphorylation in mitochondria isolated from a ubiquinone-deficient mutant of Saccharomyces cerevisiae.

Authors:  A De Santis; E Bertoli; A Di Gioia; B A Melandri; A Baccarini Melandri
Journal:  J Bioenerg Biomembr       Date:  1982-06       Impact factor: 2.945

4.  Affinity and activity of non-native quinones at the Q(B) site of bacterial photosynthetic reaction centers.

Authors:  Xinyu Zhang; M R Gunner
Journal:  Photosynth Res       Date:  2013-05-29       Impact factor: 3.573

5.  In photosynthetic reaction centers, the free energy difference for electron transfer between quinones bound at the primary and secondary quinone-binding sites governs the observed secondary site specificity.

Authors:  K M Giangiacomo; P L Dutton
Journal:  Proc Natl Acad Sci U S A       Date:  1989-04       Impact factor: 11.205

  5 in total

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