Dynamics of an LPS translocon induced by substrate and an antimicrobial peptide

Lipopolysaccharide (LPS) transport to the outer membrane (OM) is a crucial step in the biogenesis of microbial surface defenses. Although many features of the translocation mechanism have been elucidated, molecular details of LPS insertion via the LPS transport (Lpt) OM protein LptDE remain elusive....

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Veröffentlicht in:Nature chemical biology 2021-02, Vol.17 (2), p.187-195
Hauptverfasser: Fiorentino, Francesco, Sauer, Joshua B., Qiu, Xingyu, Corey, Robin A., Cassidy, C. Keith, Mynors-Wallis, Benjamin, Mehmood, Shahid, Bolla, Jani R., Stansfeld, Phillip J., Robinson, Carol V.
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Sprache:eng
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Zusammenfassung:Lipopolysaccharide (LPS) transport to the outer membrane (OM) is a crucial step in the biogenesis of microbial surface defenses. Although many features of the translocation mechanism have been elucidated, molecular details of LPS insertion via the LPS transport (Lpt) OM protein LptDE remain elusive. Here, we integrate native MS with hydrogen–deuterium exchange MS and molecular dynamics simulations to investigate the influence of substrate and peptide binding on the conformational dynamics of LptDE. Our data reveal that LPS induces opening of the LptD β-taco domain, coupled with conformational changes on β-strands adjacent to the putative lateral exit gate. Conversely, an antimicrobial peptide, thanatin, stabilizes the β-taco, thereby preventing LPS transport. Our results illustrate that LPS insertion into the OM relies on concerted opening movements of both the β-barrel and β-taco domains of LptD, and suggest a means for developing antimicrobial therapeutics targeting this essential process in Gram-negative ESKAPE pathogens. Native mass spectrometry, HDX-MS and MD simulations define the mechanism for how LPS binding to the Gram-negative outer membrane complex LptDE opens the LptD lateral exit gate and how thanatin impairs transport across the periplasm.
ISSN:1552-4450
1552-4469
DOI:10.1038/s41589-020-00694-2