4.8 Article

Functional Water Wires Catalyze Long-Range Proton Pumping in the Mammalian Respiratory Complex I

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 142, 期 52, 页码 21758-21766

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c09209

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资金

  1. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program [715311]
  2. Knut and Alice Wallenberg (KAW) Foundation
  3. Swedish National Infrastructure for Computing at PDC Center - Swedish Research Council [SNIC 2020/1-38, 2016-07213]
  4. SuperMuc at the Leibniz Supercomputing Center (LRZ) [pn34he]
  5. Forte [2016-07213] Funding Source: Forte

向作者/读者索取更多资源

The respiratory complex I is a gigantic (1 MDa) redox-driven proton pump that reduces the ubiquinone pool and generates proton motive force to power ATP synthesis in mitochondria. Despite resolved molecular structures and biochemical characterization of the enzyme from multiple organisms, its long-range (similar to 300 A) proton-coupled electron transfer (PCET) mechanism remains unsolved. We employ here microsecond molecular dynamics simulations to probe the dynamics of the mammalian complex I in combination with hybrid quantum/classical (QM/MM) free energy calculations to explore how proton pumping reactions are triggered within its 200 A wide membrane domain. Our simulations predict extensive hydration dynamics of the antiporter-like subunits in complex I that enable lateral proton transfer reactions on a microsecond time scale. We further show how the coupling between conserved ion pairs and charged residues modulate the proton transfer dynamics, and how transmembrane helices and gating residues control the hydration process. Our findings suggest that the mammalian complex I pumps protons by tightly linked conformational and electrostatic coupling principles.

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