Distinct ubiquinone binding at the oxidation and reduction sites of cytochrome bc 1

The function of cytochrome bc 1 , a widespread energy-conserving enzyme, requires the coordinated activity of two quinone-binding sites (Q o catalyzing oxidation of ubiquinol and Q i catalyzing reduction of ubiquinone). The operation of Q o , but not Q i , involves large-scale movement of the head domain of iron-sulfur protein (ISP-HD). How the respective sites accommodate quinone molecules for efficient catalysis remains elusive. Here, we present high-resolution cryoelectron microscopy structures of bacterial cytochrome bc 1 with native ubiquinone molecules in various states. They show that the quinone headgroup occupies a catalytically competent position in Q o only when the ISP-HD interacts with cytochrome b. When the ISP-HD does not interact with this subunit, quinone is present in the hydrophobic groove, however its headgroup is prevented from reaching the catalytic cavity by steric hindrance. In this state, the position of quinone headgroup is clearly not fixed. In contrast, all structures show Q i in the same state with a well-resolved and catalytically competent quinone headgroup, but with its tail not fixed. These distinctly different ubiquinone binding modes for Q o and Q i secure the smooth operation of cytochrome bc 1 .

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Journal
Proceedings of the National Academy of Sciences
Published
2026-09-01
DOI
https://doi.org/10.1073/pnas.2618242123
Primary Topic
Photosynthetic Processes and Mechanisms
Type
article
Field-Weighted Citation Impact
0.00

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article

Distinct ubiquinone binding at the oxidation and reduction sites of cytochrome bc 1

Sebastian Glatt, Artur Osyczka, Marcin Sarewicz, Bohun Mielecki et al.
Proceedings of the National Academy of Sciences
Photosynthetic Processes and Mechanisms
article

Distinct ubiquinone binding at the oxidation and reduction sites of cytochrome bc 1

Sebastian Glatt, Artur Osyczka, Marcin Sarewicz, Bohun Mielecki, Anna Wójcik‐Augustyn, Rafał Pietras, Marcin Jaciuk, Łukasz Koziej
article en

Abstract

The function of cytochrome bc 1 , a widespread energy-conserving enzyme, requires the coordinated activity of two quinone-binding sites (Q o catalyzing oxidation of ubiquinol and Q i catalyzing reduction of ubiquinone). The operation of Q o , but not Q i , involves large-scale movement of the head domain of iron-sulfur protein (ISP-HD). How the respective sites accommodate quinone molecules for efficient catalysis remains elusive. Here, we present high-resolution cryoelectron microscopy structures of bacterial cytochrome bc 1 with native ubiquinone molecules in various states. They show that the quinone headgroup occupies a catalytically competent position in Q o only when the ISP-HD interacts with cytochrome b. When the ISP-HD does not interact with this subunit, quinone is present in the hydrophobic groove, however its headgroup is prevented from reaching the catalytic cavity by steric hindrance. In this state, the position of quinone headgroup is clearly not fixed. In contrast, all structures show Q i in the same state with a well-resolved and catalytically competent quinone headgroup, but with its tail not fixed. These distinctly different ubiquinone binding modes for Q o and Q i secure the smooth operation of cytochrome bc 1 .

Proceedings of the National Academy of SciencesVol. 123(36)
Jagiellonian University (PL), University of Veterinary Medicine Vienna (AT), Applied BioPhysics (United States) (US), Institute of Molecular Biology and Biophysics (RU)
Narodowe Centrum Nauki, Infrastruktura PL-Grid
Affordable and clean energy
Openalex Percentile: Top 18%
Photosynthetic Processes and Mechanisms
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