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Quinone Binding Sites of Cyt Bc Complexes Analysed by X-ray Crystallography and Cryogenic Electron Microscopy

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Specialty Biochemistry
Date 2022 Mar 31
PMID 35356963
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Abstract

Cytochrome (cyt) bc1, bcc and b6f complexes, collectively referred to as cyt bc complexes, are homologous isoprenoid quinol oxidising enzymes present in diverse phylogenetic lineages. Cyt bc1 and bcc complexes are constituents of the electron transport chain (ETC) of cellular respiration, and cyt b6f complex is a component of the photosynthetic ETC. Cyt bc complexes share in general the same Mitchellian Q cycle mechanism, with which they accomplish proton translocation and thus contribute to the generation of proton motive force which drives ATP synthesis. They therefore require a quinol oxidation (Qo) and a quinone reduction (Qi) site. Yet, cyt bc complexes evolved to adapt to specific electrochemical properties of different quinone species and exhibit structural diversity. This review summarises structural information on native quinones and quinone-like inhibitors bound in cyt bc complexes resolved by X-ray crystallography and cryo-EM structures. Although the Qi site architecture of cyt bc1 complex and cyt bcc complex differs considerably, quinone molecules were resolved at the respective Qi sites in very similar distance to haem bH. In contrast, more diverse positions of native quinone molecules were resolved at Qo sites, suggesting multiple quinone binding positions or captured snapshots of trajectories toward the catalytic site. A wide spectrum of inhibitors resolved at Qo or Qi site covers fungicides, antimalarial and antituberculosis medications and drug candidates. The impact of these structures for characterising the Q cycle mechanism, as well as their relevance for the development of medications and agrochemicals are discussed.

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References
1.
Rawson S, McPhillie M, Johnson R, Fishwick C, Muench S . The potential use of single-particle electron microscopy as a tool for structure-based inhibitor design. Acta Crystallogr D Struct Biol. 2017; 73(Pt 6):534-540. PMC: 5458495. DOI: 10.1107/S2059798317004077. View

2.
Fisher N, Meunier B, Biagini G . The cytochrome bc complex as an antipathogenic target. FEBS Lett. 2020; 594(18):2935-2952. DOI: 10.1002/1873-3468.13868. View

3.
Painter H, Morrisey J, Mather M, Vaidya A . Specific role of mitochondrial electron transport in blood-stage Plasmodium falciparum. Nature. 2007; 446(7131):88-91. DOI: 10.1038/nature05572. View

4.
Berry E, Huang L, Lee D, Daldal F, Nagai K, Minagawa N . Ascochlorin is a novel, specific inhibitor of the mitochondrial cytochrome bc1 complex. Biochim Biophys Acta. 2009; 1797(3):360-70. PMC: 2819552. DOI: 10.1016/j.bbabio.2009.12.003. View

5.
Schoepp-Cothenet B, Lieutaud C, Baymann F, Vermeglio A, Friedrich T, Kramer D . Menaquinone as pool quinone in a purple bacterium. Proc Natl Acad Sci U S A. 2009; 106(21):8549-54. PMC: 2688977. DOI: 10.1073/pnas.0813173106. View