Thanatin Impairs Lipopolysaccharide Transport Complex Assembly by Targeting LptC-LptA Interaction and Decreasing LptA Stability

被引:45
作者
Moura, Elisabete C. C. M. [1 ]
Baeta, Tiago [2 ]
Romanelli, Alessandra [3 ]
Laguri, Cedric [2 ]
Martorana, Alessandra M. [1 ]
Erba, Emanuele [3 ]
Simorre, Jean-Pierre [2 ]
Sperandeo, Paola [1 ]
Polissi, Alessandra [1 ]
机构
[1] Univ Milan, Dipartimento Sci Farmacol & Biomol, Milan, Italy
[2] Univ Grenoble Alpes, CNRS, CEA, IBS, Grenoble, France
[3] Univ Milan, Dipartimento Sci Farmaceut, Milan, Italy
来源
FRONTIERS IN MICROBIOLOGY | 2020年 / 11卷
基金
欧盟地平线“2020”;
关键词
bacterial cell wall; lipopolysaccharide; Lpt system; thanatin; antimicrobial peptides; BACTH technique; NMR; TRANSENVELOPE PROTEIN COMPLEX; OUTER-MEMBRANE; ESCHERICHIA-COLI; FUNCTIONAL-ANALYSIS; STRUCTURAL BASIS; INNER-MEMBRANE; OLIGOMERIZATION; IDENTIFICATION; ANTIBIOTICS; SEQUENCE;
D O I
10.3389/fmicb.2020.00909
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The outer membrane (OM) of Gram-negative bacteria is a highly selective permeability barrier due to its asymmetric structure with lipopolysaccharide (LPS) in the outer leaflet. In Escherichia coli, LPS is transported to the cell surface by the LPS transport (Lpt) system composed of seven essential proteins forming a transenvelope bridge. Transport is powered by the ABC transporter LptB(2)FGC, which extracts LPS from the inner membrane (IM) and transfers it, through LptC protein, to the periplasmic protein LptA. Then, LptA delivers LPS to the OM LptDE translocon for final assembly at the cell surface. The Lpt protein machinery operates as a single device, since depletion of any component leads to the accumulation of a modified LPS decorated with repeating units of colanic acid at the IM outer leaflet. Moreover, correct machine assembly is essential for LPS transit and disruption of the Lpt complex results in LptA degradation. Due to its vital role in cell physiology, the Lpt system represents a good target for antimicrobial drugs. Thanatin is a naturally occurring antimicrobial peptide reported to cause defects in membrane assembly and demonstrated in vitro to bind to the N-terminal beta-strand of LptA. Since this region is involved in both LptA dimerization and interaction with LptC, we wanted to elucidate the mechanism of inhibition of thanatin and discriminate whether its antibacterial effect is exerted by the disruption of the interaction of LptA with itself or with LptC. For this purpose, we here implemented the Bacterial Adenylate Cyclase Two-Hybrid (BACTH) system to probe in vivo the Lpt interactome in the periplasm. With this system, we found that thanatin targets both LptC-LptA and LptA-LptA interactions, with a greater inhibitory effect on the former. We confirmed in vitro the disruption of LptC-LptA interaction using two different biophysical techniques. Finally, we observed that in cells treated with thanatin, LptA undergoes degradation and LPS decorated with colanic acid accumulates. These data further support inhibition or disruption of Lpt complex assembly as the main killing mechanism of thanatin against Gram-negative bacteria.
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页数:15
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共 64 条
  • [1] A Peptidomimetic Antibiotic Interacts with the Periplasmic Domain of LptD from Pseudomonas aeruginosa
    Andolina, Gloria
    Bencze, Laszlo-Csaba
    Zerbe, Katja
    Mueller, Maik
    Steinmann, Jessica
    Kocherla, Harsha
    Mondal, Milon
    Sobek, Jens
    Moehle, Kerstin
    Malojcic, Goran
    Wollscheid, Bernd
    Robinson, John A.
    [J]. ACS CHEMICAL BIOLOGY, 2018, 13 (03) : 666 - 675
  • [2] Fluorescence and Morphology of Self-Assembled Nucleobases and Their Diphenylalanine Hybrid Aggregates
    Avitabile, Concetta
    Diaferia, Carlo
    Roviello, Valentina
    Altamura, Davide
    Giannini, Cinzia
    Vitagliano, Luigi
    Accardo, Antonella
    Romanelli, Alessandra
    [J]. CHEMISTRY-A EUROPEAN JOURNAL, 2019, 25 (65) : 14850 - 14857
  • [3] The bacterial two-hybrid system based on adenylate cyclase reconstitution in Escherichia coli
    Battesti, Aurelia
    Bouveret, Emmanuelle
    [J]. METHODS, 2012, 58 (04) : 325 - 334
  • [4] The complete genome sequence of Escherichia coli K-12
    Blattner, FR
    Plunkett, G
    Bloch, CA
    Perna, NT
    Burland, V
    Riley, M
    ColladoVides, J
    Glasner, JD
    Rode, CK
    Mayhew, GF
    Gregor, J
    Davis, NW
    Kirkpatrick, HA
    Goeden, MA
    Rose, DJ
    Mau, B
    Shao, Y
    [J]. SCIENCE, 1997, 277 (5331) : 1453 - +
  • [5] Characterization of the two-protein complex in Escherichia coli responsible for lipopolysaccharide assembly at the outer membrane
    Chng, Shu-Sin
    Ruiz, Natividad
    Chimalakonda, Gitanjali
    Silhavy, Thomas J.
    Kahne, Daniel
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (12) : 5363 - 5368
  • [6] MECHANISM OF MALTOSE TRANSPORT IN ESCHERICHIA-COLI - TRANSMEMBRANE SIGNALING BY PERIPLASMIC BINDING-PROTEINS
    DAVIDSON, AL
    SHUMAN, HA
    NIKAIDO, H
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1992, 89 (06) : 2360 - 2364
  • [7] MsbA-dependent translocation of lipids across the inner membrane of Escherichia coli
    Doerrler, WT
    Gibbons, HS
    Raetz, CRH
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (43) : 45102 - 45109
  • [8] Structural basis for outer membrane lipopolysaccharide insertion
    Dong, Haohao
    Xiang, Quanju
    Gu, Yinghong
    Wang, Zhongshan
    Paterson, Neil G.
    Stansfeld, Phillip J.
    He, Chuan
    Zhang, Yizheng
    Wang, Wenjian
    Dong, Changjiang
    [J]. NATURE, 2014, 511 (7507) : 52 - U569
  • [9] The ABC maltose transporter
    Ehrmann, M
    Ehrle, R
    Hofmann, E
    Boos, W
    Schlösser, A
    [J]. MOLECULAR MICROBIOLOGY, 1998, 29 (03) : 685 - 694
  • [10] Mutation and Suppressor Analysis of the Essential Lipopolysaccharide Transport Protein LptA Reveals Strategies To Overcome Severe Outer Membrane Permeability Defects in Escherichia coli
    Falchi, Federica A.
    Maccagni, Elisa A.
    Puccio, Simone
    Peano, Clelia
    De Castro, Cristina
    Palmigiano, Angelo
    Garozzo, Domenico
    Martorana, Alessandra M.
    Polissi, Alessandra
    Deho, Gianni
    Sperandeo, Paola
    [J]. JOURNAL OF BACTERIOLOGY, 2018, 200 (02)