Literature DB >> 189758

Intramitochondrial positions of cytochrome haem groups determined by dipolar interactions with paramagnetic cations.

G D Case, J S Leigh.   

Abstract

E.p.r.(electron-paramagnetic-resonance) spectra of the ferricytochromes were studied in normal and 'nickel-plated' pigeon heart mitochondria and pigeon heart submitochondrial particles. NiCL2 added to either mitochondria or particles was bound completely to the membranes, but none was transported across the vesicles. Hence, any perturbations of the haem e.p.r. spectra by Ni(II) should occur only for those cytochromes in close proximity to the exterior surface. Whenever Ni(II) can approach to within 1 nm of cytochrome haem. the consequent acceleration of the haem e.p.r. relaxation kinetics should elicit dipolar line broadening. Relaxation acceleration should also increase the incident power level required to saturate the haem e.p.r. signal. In pigeon heart mitochondria, at least three e.p.r. resonances, attributable in part to cytochromes c1, bK and br, are observed at gz=3.3 resonance. In these submitochondrial particles, the peak at gz=3.5 is missing, and the resonance at gz=3.6 resolves into two components, neither of which is sensitive to added Ni(ii). Addition of free haemin (ferric, a paramagnetic anion) to intact mitochondria elicits the same e.p.r. signal changes as does a preparation of submitochondrial particles. Saturation curves for cytochrome oxidase obtained for e.p.r. spectra of the high-spin form (g = 6) and the low-spin form (gz=3.1) also reveal no effect of Ni(II) on the haem e.p.r. relaxation in either mitochondria or inverted submitochondrial particles. Further, Ni(II) fails to alter the spectra or saturation properties of cytochrome c in either mitochondria or submitochondrial particles therefrom. Only with a 50-fold molar excess of Ni(II) can one accelerate the e.p.r. relaxation of cytochrome c in aqueous solution, although other more subtle types of magnetic interactions may occur between the cytochrome and either Ni(II) or ferricyanide. Addition of haemin to mitochondria likewise failed to alter the e.p.r. characteristics of either cytochrome c or cytochrome oxidase. The present observations strongly suggest that cytochromes bK, br and c1 reside on the exterior surface of the inner mitochondrial membrane. On the other hand, we find no positive evidence for the location of cytochrome c or cytochrome oxidase haem groups within 1 nm of either membrane surface. Because of possible shielding effects from the protein moieties, however, we cannot unequivocally assign the location of the haem groups to the membrane interior. The present results are not inconsistent with the observations of other investigators who used different techniques. However, it is clear that any model of energy coupling in mitochondrial oxidative phosphorylation must account for the positioning of all the b-c cytochrome haem groups on the outside.

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Year:  1976        PMID: 189758      PMCID: PMC1164295          DOI: 10.1042/bj1600769

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  58 in total

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3.  Symmetry, orientation and rotational mobility in the a3 heme of cytochrome c oxidase in the inner membrane of mitochondria.

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5.  Iron-sulfur components of succinate dehydrogenase: stoichiometry and kinetic behavior in activated preparations.

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6.  Magnetic resonance studies on the mitochondrial divalent cation carrier.

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7.  Determination of serum proteins by means of the biuret reaction.

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8.  Studies on the mechanism of site I energy conservation.

Authors:  T Ohnishi
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9.  Intramitochondrial positions of ubiquinone and iron-sulphur centres determined by dipolar interactions with paramagnetic ions.

Authors:  G D Case; T Ohnishi; J S Leigh
Journal:  Biochem J       Date:  1976-12-15       Impact factor: 3.857

10.  Fine structure of lipid-depleted mitochondria.

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  11 in total

1.  Properties of protease-treated cytochrome c oxidase from beef heart.

Authors:  J C Boonman; G G van Beek; A O Muijsers; B F van Gelder
Journal:  Mol Cell Biochem       Date:  1979-08-15       Impact factor: 3.396

Review 2.  Is the cytochrome b-c1 complex a proton pump? Probably yes.

Authors:  D S Beattie
Journal:  J Bioenerg Biomembr       Date:  1986-02       Impact factor: 2.945

Review 3.  In bacteria which grow on simple reductants, generation of a proton gradient involves extracytoplasmic oxidation of substrate.

Authors:  A B Hooper; A A DiSpirito
Journal:  Microbiol Rev       Date:  1985-06

Review 4.  Experimental observations on the structure and function of mitochondrial complex III that are unresolved by the protonmotive ubiquinone-cycle hypothesis.

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Review 5.  A perspective on Q-cycles.

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Journal:  J Bioenerg Biomembr       Date:  1986-06       Impact factor: 2.945

Review 6.  Implications of cytochrome b6/f location for thylakoidal electron transport.

Authors:  D R Allred; L A Staehelin
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7.  Labeling of complex III, with [35S]diazobenzenesulfonate: orientation of this electron transfer segment in the mitochondrial inner membrane.

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Journal:  Proc Natl Acad Sci U S A       Date:  1979-02       Impact factor: 11.205

8.  Sequence homology and structural similarity between cytochrome b of mitochondrial complex III and the chloroplast b6-f complex: position of the cytochrome b hemes in the membrane.

Authors:  W R Widger; W A Cramer; R G Herrmann; A Trebst
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9.  Differential exposure of components of cytochrome b-c1 region in beef heart mitochondria and electron transport particles.

Authors:  H J Harmon; P F Basile
Journal:  J Bioenerg Biomembr       Date:  1982-02       Impact factor: 2.945

10.  Intramitochondrial positions of ubiquinone and iron-sulphur centres determined by dipolar interactions with paramagnetic ions.

Authors:  G D Case; T Ohnishi; J S Leigh
Journal:  Biochem J       Date:  1976-12-15       Impact factor: 3.857

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