Literature DB >> 28931578

Lipid topology and electrostatic interactions underpin lytic activity of linear cationic antimicrobial peptides in membranes.

David J Paterson1, Manlio Tassieri1, Julien Reboud1, Rab Wilson1, Jonathan M Cooper2.   

Abstract

Linear cationic antimicrobial peptides are a diverse class of molecules that interact with a wide range of cell membranes. Many of these peptides disrupt cell integrity by forming membrane-spanning pores that ultimately lead to their death. Despite these peptides high potency and ability to evade acquired bacterial drug resistance, there is a lack of knowledge on their selectivity and activity mechanisms. Such an understanding would provide an informative framework for rational design and could lead to potential antimicrobial therapeutic targets. In this paper, we use a high-throughput microfluidic platform as a quantitative screen to assess peptide activity and selectivity by precisely controlling exposure to vesicles with lipid compositions that mimic both bacterial and mammalian cell membranes. We explore the complexity of the lipid-peptide interactions governing membrane-disruptive behaviors and establish a link between peptide pore formation and both lipid-peptide charge and topological interactions. We propose a topological model for linear antimicrobial peptide activity based on the increase in membrane strain caused by the continuous adsorption of peptides to the target vesicle coupled with the effects of both lipid-peptide charge and topographical interactions. We also show the validity of the proposed model by investigating the activity of two prototypical linear cationic peptides: magainin 2 amide (which is selective for bacterial cells) and melittin (which targets both mammalian and bacterial cells indiscriminately). Finally, we propose the existence of a negative feedback mechanism that governs the pore formation process and controls the membrane's apparent permeability.

Entities:  

Keywords:  antimicrobial peptides; giant unilamellar vesicle; magainin; melittin; microfluidic

Mesh:

Substances:

Year:  2017        PMID: 28931578      PMCID: PMC5635876          DOI: 10.1073/pnas.1704489114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  41 in total

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Journal:  Biochim Biophys Acta       Date:  1999-12-15

2.  Cascades of transient pores in giant vesicles: line tension and transport.

Authors:  Erdem Karatekin; Olivier Sandre; Hicham Guitouni; Nicolas Borghi; Pierre-Henri Puech; Françoise Brochard-Wyart
Journal:  Biophys J       Date:  2003-03       Impact factor: 4.033

Review 3.  How proteins produce cellular membrane curvature.

Authors:  Joshua Zimmerberg; Michael M Kozlov
Journal:  Nat Rev Mol Cell Biol       Date:  2006-01       Impact factor: 94.444

Review 4.  Curvature-driven lipid sorting in biomembranes.

Authors:  Andrew Callan-Jones; Benoit Sorre; Patricia Bassereau
Journal:  Cold Spring Harb Perspect Biol       Date:  2011-02-01       Impact factor: 10.005

5.  Interactions of an antimicrobial peptide, magainin 2, with outer and inner membranes of Gram-negative bacteria.

Authors:  K Matsuzaki; K Sugishita; M Harada; N Fujii; K Miyajima
Journal:  Biochim Biophys Acta       Date:  1997-07-05

6.  Giant liposomes in physiological buffer using electroformation in a flow chamber.

Authors:  Daniel J Estes; Michael Mayer
Journal:  Biochim Biophys Acta       Date:  2005-04-20

7.  Lipid composition of membranes of Escherichia coli by liquid chromatography/tandem mass spectrometry using negative electrospray ionization.

Authors:  Delphine Oursel; Corinne Loutelier-Bourhis; Nicole Orange; Sylvie Chevalier; Victor Norris; Catherine M Lange
Journal:  Rapid Commun Mass Spectrom       Date:  2007       Impact factor: 2.419

Review 8.  Binding of amphipathic alpha-helical antimicrobial peptides to lipid membranes: lessons from temporins B and L.

Authors:  Ajay K Mahalka; Paavo K J Kinnunen
Journal:  Biochim Biophys Acta       Date:  2009-04-24

9.  Melittin-induced changes of the macroscopic structure of phosphatidylethanolamines.

Authors:  A M Batenburg; J H van Esch; B de Kruijff
Journal:  Biochemistry       Date:  1988-04-05       Impact factor: 3.162

10.  LipidWrapper: an algorithm for generating large-scale membrane models of arbitrary geometry.

Authors:  Jacob D Durrant; Rommie E Amaro
Journal:  PLoS Comput Biol       Date:  2014-07-17       Impact factor: 4.475

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  19 in total

1.  Peptide-Lipid Interaction Sites Affect Vesicles' Responses to Antimicrobial Peptides.

Authors:  Yu Shi; Mingwei Wan; Lei Fu; Shan Zhang; Shiyuan Wang; Lianghui Gao; Weihai Fang
Journal:  Biophys J       Date:  2018-09-06       Impact factor: 4.033

2.  Inactivation of Bacteria by γ-Irradiation to Investigate the Interaction with Antimicrobial Peptides.

Authors:  Wilmar Correa; Julius Brandenburg; Jochen Behrends; Lena Heinbockel; Norbert Reiling; Laura Paulowski; Dominik Schwudke; Kerstin Stephan; Guillermo Martinez-de-Tejada; Klaus Brandenburg; Thomas Gutsmann
Journal:  Biophys J       Date:  2019-10-18       Impact factor: 4.033

3.  Membrane Remodeling by the Lytic Fragment of SticholysinII: Implications for the Toroidal Pore Model.

Authors:  Haydee Mesa-Galloso; Pedro A Valiente; Mario E Valdés-Tresanco; Raquel F Epand; Maria E Lanio; Richard M Epand; Carlos Alvarez; D Peter Tieleman; Uris Ros
Journal:  Biophys J       Date:  2019-09-20       Impact factor: 4.033

4.  Using fluorescence microscopy to shed light on the mechanisms of antimicrobial peptides.

Authors:  Anne K Buck; Donald E Elmore; Louise Eo Darling
Journal:  Future Med Chem       Date:  2019-09-13       Impact factor: 3.808

Review 5.  Role of Lipid Composition, Physicochemical Interactions, and Membrane Mechanics in the Molecular Actions of Microbial Cyclic Lipopeptides.

Authors:  Daniel Balleza; Andrea Alessandrini; Miguel J Beltrán García
Journal:  J Membr Biol       Date:  2019-05-16       Impact factor: 1.843

6.  TAT-RasGAP317-326 kills cells by targeting inner-leaflet-enriched phospholipids.

Authors:  Marc Serulla; Gabriel Ichim; Filip Stojceski; Gianvito Grasso; Sergii Afonin; Mathieu Heulot; Tim Schober; Robyn Roth; Cédric Godefroy; Pierre-Emmanuel Milhiet; Kushal Das; Ana J García-Sáez; Andrea Danani; Christian Widmann
Journal:  Proc Natl Acad Sci U S A       Date:  2020-11-30       Impact factor: 11.205

7.  Measuring Thousands of Single-Vesicle Leakage Events Reveals the Mode of Action of Antimicrobial Peptides.

Authors:  Kareem Al Nahas; Marcus Fletcher; Katharine Hammond; Christian Nehls; Jehangir Cama; Maxim G Ryadnov; Ulrich F Keyser
Journal:  Anal Chem       Date:  2022-06-27       Impact factor: 8.008

8.  Ultrafast Dynamics at Lipid-Water Interfaces.

Authors:  Jennifer C Flanagan; Mason L Valentine; Carlos R Baiz
Journal:  Acc Chem Res       Date:  2020-08-31       Impact factor: 22.384

9.  Inoculum effect of antimicrobial peptides.

Authors:  Maria Rosa Loffredo; Filippo Savini; Sara Bobone; Bruno Casciaro; Henrik Franzyk; Maria Luisa Mangoni; Lorenzo Stella
Journal:  Proc Natl Acad Sci U S A       Date:  2021-05-25       Impact factor: 11.205

10.  Standardizing characterization of membrane active peptides with microfluidics.

Authors:  Kareem Al Nahas; Ulrich F Keyser
Journal:  Biomicrofluidics       Date:  2021-07-07       Impact factor: 2.800

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