Electrostatic models of electron-driven proton transfer across a lipid membrane
Anatoly Yu. Smirnov, Lev G. Mourokh, and Franco Nori

TL;DR
This paper introduces two electrostatic models for electron-driven proton transfer across membranes, demonstrating high quantum yield and efficiency, with solutions applicable to mitochondrial and bacterial systems.
Contribution
The paper develops a unified approach to model electron-driven proton transfer, incorporating Coulomb interactions and environmental effects, applicable to mitochondrial and bacterial systems.
Findings
Quantum yield can reach up to 100%.
Power-conversion efficiency can reach 35%.
Models accurately describe electron and proton currents under various conditions.
Abstract
We present two models for electron-driven uphill proton transport across lipid membranes, with the electron energy converted to the proton gradient via the electrostatic interaction. In the first model, associated with the cytochrome c oxidase complex in the inner mitochondria membranes, the electrostatic coupling to the site occupied by an electron lowers the energy level of the proton-binding site, making the proton transfer possible. In the second model, roughly describing the redox loop in a nitrate respiration of E. coli bacteria, an electron displaces a proton from the negative side of the membrane to a shuttle, which subsequently diffuses across the membrane and unloads the proton to its positive side. We show that both models can be described by the same approach, which can be significantly simplified if the system is separated into several clusters, with strong Coulomb…
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