Xenon for tunnelling analysis of the efflux pump component OprN.

Tripartite efflux pumps are among the main actors responsible for antibiotics resistance in Gram-negative bacteria. In the last two decades, structural studies gave crucial information about the assembly interfaces and the mechanistic motions. Thus rigidifying the assembly seems to be an interesting...

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Main Authors: Yvette Véronique Ntsogo Enguéné, Gilles Phan, Cyril Garnier, Arnaud Ducruix, Thierry Prangé, Isabelle Broutin
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5590881?pdf=render
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author Yvette Véronique Ntsogo Enguéné
Gilles Phan
Cyril Garnier
Arnaud Ducruix
Thierry Prangé
Isabelle Broutin
author_facet Yvette Véronique Ntsogo Enguéné
Gilles Phan
Cyril Garnier
Arnaud Ducruix
Thierry Prangé
Isabelle Broutin
author_sort Yvette Véronique Ntsogo Enguéné
collection DOAJ
description Tripartite efflux pumps are among the main actors responsible for antibiotics resistance in Gram-negative bacteria. In the last two decades, structural studies gave crucial information about the assembly interfaces and the mechanistic motions. Thus rigidifying the assembly seems to be an interesting way to hamper the drug efflux. In this context, xenon is a suitable probe for checking whether small ligands could act as conformational lockers by targeting hydrophobic cavities. Here we focus on OprN, the outer membrane channel of the MexEF efflux pump from Pseudomonas aeruginosa. After exposing OprN crystals to xenon gas pressure, 14 binding sites were observed using X-ray crystallography. These binding sites were unambiguously characterized in hydrophobic cavities of OprN. The major site is observed in the sensitive iris-like region gating the channel at the periplasmic side, built by the three key-residues Leu 405, Asp 109, and Arg 412. This arrangement defines along the tunnel axis a strong hydrophobic/polar gradient able to enhance the passive efflux mechanism of OprN. The other xenon atoms reveal strategic hydrophobic regions of the channel scaffold to target, with the aim to freeze the dynamic movements responsible of the open/close conformational equilibrium in OprN.
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spelling doaj.art-a2ca14aac25d4832ba4c91f35a09e7a52022-12-22T03:11:00ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01129e018404510.1371/journal.pone.0184045Xenon for tunnelling analysis of the efflux pump component OprN.Yvette Véronique Ntsogo EnguénéGilles PhanCyril GarnierArnaud DucruixThierry PrangéIsabelle BroutinTripartite efflux pumps are among the main actors responsible for antibiotics resistance in Gram-negative bacteria. In the last two decades, structural studies gave crucial information about the assembly interfaces and the mechanistic motions. Thus rigidifying the assembly seems to be an interesting way to hamper the drug efflux. In this context, xenon is a suitable probe for checking whether small ligands could act as conformational lockers by targeting hydrophobic cavities. Here we focus on OprN, the outer membrane channel of the MexEF efflux pump from Pseudomonas aeruginosa. After exposing OprN crystals to xenon gas pressure, 14 binding sites were observed using X-ray crystallography. These binding sites were unambiguously characterized in hydrophobic cavities of OprN. The major site is observed in the sensitive iris-like region gating the channel at the periplasmic side, built by the three key-residues Leu 405, Asp 109, and Arg 412. This arrangement defines along the tunnel axis a strong hydrophobic/polar gradient able to enhance the passive efflux mechanism of OprN. The other xenon atoms reveal strategic hydrophobic regions of the channel scaffold to target, with the aim to freeze the dynamic movements responsible of the open/close conformational equilibrium in OprN.http://europepmc.org/articles/PMC5590881?pdf=render
spellingShingle Yvette Véronique Ntsogo Enguéné
Gilles Phan
Cyril Garnier
Arnaud Ducruix
Thierry Prangé
Isabelle Broutin
Xenon for tunnelling analysis of the efflux pump component OprN.
PLoS ONE
title Xenon for tunnelling analysis of the efflux pump component OprN.
title_full Xenon for tunnelling analysis of the efflux pump component OprN.
title_fullStr Xenon for tunnelling analysis of the efflux pump component OprN.
title_full_unstemmed Xenon for tunnelling analysis of the efflux pump component OprN.
title_short Xenon for tunnelling analysis of the efflux pump component OprN.
title_sort xenon for tunnelling analysis of the efflux pump component oprn
url http://europepmc.org/articles/PMC5590881?pdf=render
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