Molecular principles of redox-coupled sodium pumping of the ancient Rnf machinery.

Kumar, Anuj; Roth, Jennifer; Kim, Hyunho; Saura, Patricia; Bohn, Stefan; Reif-Trauttmansdorff, Tristan; Schubert, Anja; Kaila, Ville R I et al. · Nat Commun · 2025

basic_science · Level V

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Abstract

The Rnf complex is the primary respiratory enzyme of several anaerobic prokaryotes that transfers electrons from ferredoxin to NAD<sup>+</sup> and pumps ions (Na<sup>+</sup> or H<sup>+</sup>) across a membrane, powering ATP synthesis. Rnf is widespread in primordial organisms and the evolutionary predecessor of the Na<sup>+</sup>-pumping NADH-quinone oxidoreductase (Nqr). By running in reverse, Rnf uses the electrochemical ion gradient to drive ferredoxin reduction with NADH, providing low potential electrons for nitrogenases and CO<sub>2</sub> reductases. Yet, the molecular principles that couple the long-range electron transfer to Na<sup>+</sup> translocation remain elusive. Here, we resolve key functional states along the electron transfer pathway in the Na<sup>+</sup>-pumping Rnf complex from Acetobacterium woodii using redox-controlled cryo-electron microscopy that, in combination with biochemical functional assays and atomistic molecular simulations, provide key insight into the redox-driven Na<sup>+</sup> pumping mechanism. We show that the reduction of the unique membrane-embedded [2Fe2S] cluster electrostatically attracts Na<sup>+</sup>, and in turn, triggers an inward/outward transition with alternating membrane access driving the Na<sup>+</sup> pump and the reduction of NAD<sup>+</sup>. Our study unveils an ancient mechanism for redox-driven ion pumping, and provides key understanding of the fundamental principles governing energy conversion in biological systems.

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