Literature DB >> 22554985

Structure, function, and assembly of heme centers in mitochondrial respiratory complexes.

Hyung J Kim1, Oleh Khalimonchuk, Pamela M Smith, Dennis R Winge.   

Abstract

The sequential flow of electrons in the respiratory chain, from a low reduction potential substrate to O(2), is mediated by protein-bound redox cofactors. In mitochondria, hemes-together with flavin, iron-sulfur, and copper cofactors-mediate this multi-electron transfer. Hemes, in three different forms, are used as a protein-bound prosthetic group in succinate dehydrogenase (complex II), in bc(1) complex (complex III) and in cytochrome c oxidase (complex IV). The exact function of heme b in complex II is still unclear, and lags behind in operational detail that is available for the hemes of complex III and IV. The two b hemes of complex III participate in the unique bifurcation of electron flow from the oxidation of ubiquinol, while heme c of the cytochrome c subunit, Cyt1, transfers these electrons to the peripheral cytochrome c. The unique heme a(3), with Cu(B), form a catalytic site in complex IV that binds and reduces molecular oxygen. In addition to providing catalytic and electron transfer operations, hemes also serve a critical role in the assembly of these respiratory complexes, which is just beginning to be understood. In the absence of heme, the assembly of complex II is impaired, especially in mammalian cells. In complex III, a covalent attachment of the heme to apo-Cyt1 is a prerequisite for the complete assembly of bc(1), whereas in complex IV, heme a is required for the proper folding of the Cox 1 subunit and subsequent assembly. In this review, we provide further details of the aforementioned processes with respect to the hemes of the mitochondrial respiratory complexes. This article is part of a Special Issue entitled: Cell Biology of Metals.
Copyright © 2012 Elsevier B.V. All rights reserved.

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Year:  2012        PMID: 22554985      PMCID: PMC3601904          DOI: 10.1016/j.bbamcr.2012.04.008

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  122 in total

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Review 2.  Sequence variability in bacterial cytochromes c.

Authors:  R P Ambler
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3.  Preparation and characterization of the water-soluble heme-binding domain of cytochrome c1 from the Rhodobacter sphaeroides bc1 complex.

Authors:  K Konishi; S R Van Doren; D M Kramer; A R Crofts; R B Gennis
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Journal:  Biochem J       Date:  2005-12-15       Impact factor: 3.857

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Authors:  E Gerhus; P Steinrücke; B Ludwig
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7.  Localization of histidine residues responsible for heme axial ligation in cytochrome b556 of complex II (succinate:ubiquinone oxidoreductase) in Escherichia coli.

Authors:  C R Vibat; G Cecchini; K Nakamura; K Kita; R B Gennis
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8.  Heme binding to a conserved Cys-Pro-Val motif is crucial for the catalytic function of mitochondrial heme lyases.

Authors:  H Steiner; G Kispal; A Zollner; A Haid; W Neupert; R Lill
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6.  Heme exporter FLVCR is required for T cell development and peripheral survival.

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Review 7.  Bringing Bioactive Compounds into Membranes: The UbiA Superfamily of Intramembrane Aromatic Prenyltransferases.

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8.  Characterization of Human and Yeast Mitochondrial Glycine Carriers with Implications for Heme Biosynthesis and Anemia.

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Review 9.  Emerging concepts in the flavinylation of succinate dehydrogenase.

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10.  The OXA2a Insertase of Arabidopsis Is Required for Cytochrome c Maturation.

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