ArticleNature communications2025
Molecular basis for multidrug efflux by an anaerobic-associated RND transporter.
Article in Nature communications, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Impaired Membrane Energetics Underlies Collateral Sensitivity to Amphenicols During Meropenem Resistance Evolution inMicroorganisms · 2026Article
- Structural insights into a substrate translocation pathway revealed by the RND efflux pump complex MexJK fromScience advances · 2026Article
- Molecular mechanism of transition-state inhibitors of bacterial antibiotic efflux pumps.npj antimicrobials and resistance · 2026Article
- Cryo-EM structures of a MexB-MexY chimeric efflux pump reveal that large open clefts are intrinsic to the MexY porter domain.Acta crystallographica. Section F, Structural biology communications · 2026Article
- Substrate specificity of Burkholderia pseudomallei multidrug transporters is influenced by the hydrophilic patch in the substrate-binding pocket.FEBS letters · 2026Article
- Article
- The Resistance-Nodulation-Division efflux pump EefABC is highly conserved within lineages ofMicrobial genomics · 2026Article
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16 authors.
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Abstract
Bacteria can resist antibiotics and toxic substances within demanding ecological settings, such as low oxygen, extreme acid, and during nutrient starvation. MdtEF, a proton motive force-driven efflux pump from the resistance-nodulation-cell division (RND) superfamily, is upregulated in these conditions but its molecular mechanism is unknown. Here, we report cryo-electron microscopy structures of Escherichia coli multidrug transporter MdtF within native-lipid nanodiscs, including a single-point mutant with an altered multidrug phenotype and associated substrate-bound form. Drug binding domain and channel conformational plasticity likely governs substrate polyspecificity, analogous to closely related, constitutively expressed counterpart, AcrB. Whereas we discover distinct transmembrane state transitions within MdtF, which create a more engaged proton relay network, altered drug transport allostery and an acid-responsive increase in efflux efficiency. Our findings provide mechanistic insights necessary to understand bacterial xenobiotic and toxin removal by MdtF and its role within nutrient-depleted and acid stress settings, as endured in the gastrointestinal tract.
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