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February 14, 2026Nature Communications2 citationsOpen Access

The redox driven Na+-pumping mechanism in Vibrio cholerae NADH-quinone oxidoreductase relies on dynamic conformational changes

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MIMoe Ishikawa-FukudaTSTakehito SekiJKJun-ichi Kishikawa

Key Points

  • This research aims to investigate the conformational changes in Na+-pumping NADH-quinone oxidoreductase (Na+-NQR) and their role in electron transfer and Na+ translocation.
  • Identified five distinct conformational states of Na+-NQR using mutants, specific inhibitors, and low-sodium conditions.
  • Conducted molecular dynamics simulations to analyze structural changes with redox reactions leading to Na+ translocation.
  • Identified key conformational changes in Na+-NQR during catalytic turnover.
  • Elucidated the role of 2Fe-2S reduction in triggering Na+ translocation driven by structural rearrangements.
  • Demonstrated that repositioning of NqrC and NqrF is influenced by NqrD/E subunits.

Abstract

The Na + -pumping NADH-quinone oxidoreductase (Na + -NQR) is a key respiratory enzyme in many marine and pathogenic bacteria that couples electron transfer to Na + -pumping across the membrane. Earlier X-ray and cryo-electron microscopy structures of Na + -NQR from Vibrio cholerae suggested that the subunits harboring redox cofactors undergo conformational changes during catalytic turnover. However, these proposed rearrangements have not yet been confirmed. Here, we have identified at least five distinct conformational states of Na + -NQR using: mutants that lack specific cofactors, specific inhibitors or low-sodium conditions. Molecular dynamics simulations based on these structural insights indicate that 2Fe-2S reduction in NqrD/E plays a crucial role in triggering Na + translocation by driving structural rearrangements in the NqrD/E subunits, which subsequently influence NqrC and NqrF positioning. This study provides structural insights into the mechanism of Na + translocation coupled to electron transfer in Na⁺-NQR.

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Cite This Study

Ishikawa-Fukuda et al. (2026) studied this question.

synapsesocial.com/papers/698fd276306598e8538de941https://doi.org/10.1038/s41467-026-69182-w
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