Characterisation of cell membrane interaction mechanisms of antimicrobial peptides by electrical bilayer recording

被引:21
|
作者
Priyadarshini, Diana [1 ]
Ivica, Josip [1 ]
Separovic, Frances [2 ]
de Planque, Maurits R. R. [1 ]
机构
[1] Univ Southampton, Fac Phys & Appl Sci, Elect & Comp Sci, Southampton SO17 1BJ, Hants, England
[2] Univ Melbourne, Sch Chem, Bio21 Inst, Melbourne, Vic 3010, Australia
关键词
Antimicrobial peptides; Bilayer lipid membranes; Lipid-peptide interactions; Phospholipids; AUREIN; 1.2; MELITTIN; ENHANCE; MODEL;
D O I
10.1016/j.bpc.2021.106721
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Many antimicrobial peptides (AMPs) are cationic host defence peptides (HDPs) that interact with microbial membranes. This ability may lead to implementation of AMPs as therapeutics to overcome the wide-spread antibiotic resistance problem as the affected bacteria may not be able to recover from membrane lysis types of attack. AMP interactions with lipid bilayer membranes are typically explained through three mechanisms, i.e., barrel-stave pore, toroidal pore and carpet models. Electrical bilayer recording is a relatively simple and sensitive technique that is able to capture the nanoscale perturbations caused by the AMPs in the bilayer membranes. Molecular-level understanding of the behaviour of AMPs in relation to lipid bilayers mimicking bacterial and human cell membranes is essential for their development as novel therapeutic agents that are capable of targeted action against disease causing micro-organisms. The effects of four AMPs (aurein 1.2, caerin 1.1, citropin 1.1 and maculatin 1.1 from the skin secretions of Australian tree frogs) and the toxin melittin (found in the venom of honeybees) on two different phospholipid membranes were studied using the electrical bilayer recording technique. Bilayers composed of zwitterionic (DPhPC) and anionic (DPhPC/POPG) lipids were used to mimic the charge of eukaryotic and prokaryotic cell membranes, respectively, so as to determine the corresponding interaction mechanisms for different concentrations of the peptide. Analysis of the dataset corresponding to the four frog AMPs, as well as the resulting dataset corresponding to the bee toxin, confirms the proposed peptidebilayer interaction models in existing publications and demonstrates the importance of using appropriate bilayer compositions and peptide concentrations for AMP studies.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Diversity in antistaphylococcal mechanisms among membrane-targeting antimicrobial peptides
    Koo, SP
    Bayer, AS
    Yeaman, MR
    INFECTION AND IMMUNITY, 2001, 69 (08) : 4916 - 4922
  • [22] Distinct mode of membrane interaction and disintegration by diverse class of antimicrobial peptides
    Agadi, Nutan
    Maity, Atanu
    Jha, Akash Kumar
    Chakrabarti, Rajarshi
    Kumar, Ashutosh
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2022, 1864 (12):
  • [23] Antimicrobial activity, membrane interaction and structural features of short arginine-rich antimicrobial peptides
    Agrillo, Bruna
    Porritiello, Alessandra
    Gratino, Lorena
    Balestrieri, Marco
    Proroga, Yolande Therese
    Mancusi, Andrea
    Cozzi, Loredana
    Vicenza, Teresa
    Dardano, Principia
    Miranda, Bruno
    Escriba, Pablo V.
    Gogliettino, Marta
    Palmieri, Gianna
    FRONTIERS IN MICROBIOLOGY, 2023, 14
  • [24] Tumor cell membrane-targeting cationic antimicrobial peptides: novel insights into mechanisms of action and therapeutic prospects
    Amy A. Baxter
    Fung T. Lay
    Ivan K. H. Poon
    Marc Kvansakul
    Mark D. Hulett
    Cellular and Molecular Life Sciences, 2017, 74 : 3809 - 3825
  • [25] Tumor cell membrane-targeting cationic antimicrobial peptides: novel insights into mechanisms of action and therapeutic prospects
    Baxter, Amy A.
    Lay, Fung T.
    Poon, Ivan K. H.
    Kvansakul, Marc
    Hulett, Mark D.
    CELLULAR AND MOLECULAR LIFE SCIENCES, 2017, 74 (20) : 3809 - 3825
  • [26] The role of membrane tension in the action of antimicrobial peptides and cell-penetrating peptides in biomembranes
    Hasan M.
    Moghal M.M.R.
    Saha S.K.
    Yamazaki M.
    Biophysical Reviews, 2019, 11 (3) : 431 - 448
  • [27] Construction of antimicrobial peptides/alginate multilayers modified membrane: Antibiofouling performance and mechanisms
    Chen, Yanrui
    Zhang, Xingran
    Li, Fang
    Ma, Jinxing
    Wang, Zhiwei
    CHEMICAL ENGINEERING JOURNAL, 2023, 472
  • [28] Membrane interaction and perturbation mechanisms induced by two cationic cell penetrating peptides with distinct charge distribution
    Alves, Isabel D.
    Goasdoue, Nicole
    Correia, Isabelle
    Aubry, Soline
    Galanth, Cecile
    Sagan, Sandrine
    Lavielle, Solange
    Chassaing, Gerard
    BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2008, 1780 (7-8): : 948 - 959
  • [29] Analysis of membrane transportation of cell penetrating peptides using lipid bilayer system
    Saito, Chihiro
    Kawano, Ryuji
    BIOPHYSICAL JOURNAL, 2022, 121 (03) : 223A - 223A
  • [30] Mechanism of the binding, insertion and destabilization of phospholipid bilayer membranes by α-helical antimicrobial and cell non-selective membrane-lytic peptides
    Shai, Y
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1999, 1462 (1-2): : 55 - 70