Self-assembling diphenylalanine peptide nanotubes selectively eradicate bacterial biofilm infection

被引:73
作者
Porter, Simon L. [1 ]
Coulter, Sophie M. [1 ]
Pentlavalli, Sreekanth [1 ]
Thompson, Thomas P. [1 ]
Laverty, Garry [1 ]
机构
[1] Queens Univ Belfast, Sch Pharm, Biofunct Nanomat Grp, Med Biol Ctr, 97 Lisburn Rd, Belfast BT9 7BL, Antrim, North Ireland
基金
英国工程与自然科学研究理事会;
关键词
Peptide; Biofilm; Infection; Nanotube; Drug delivery; Biomaterial; ANTIMICROBIAL PEPTIDES; STAPHYLOCOCCUS-AUREUS; ATMOSPHERIC-PRESSURE; NONTHERMAL PLASMA; STRATEGIES; DESIGN;
D O I
10.1016/j.actbio.2018.07.033
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Biofilms present a major problem to industry and healthcare worldwide. Composed of a population of surface-attached microbial cells surrounded by a protective extracellular polysaccharide matrix, they are responsible for increased tolerance to antibiotics, treatment failure and a resulting rise in antimicrobial resistance. Here we demonstrate that self-assembled peptide nanostructures composed of a diphenylalanine motif provide sufficient antibacterial activity to eradicate mature biofilm forms of bacteria widely implicated in hospital infections. Modification of terminal functional groups to amino (-NH2), carboxylic acid (-COON) or both modalities, and switch to d-isomers, resulted in changes in antibacterial selectivity and mammalian cell toxicity profiles. Of the three peptide nanotubes structures studied (NH2-FF-COOH, NH2-ff-COOH and NH2-FF-NH2), NH2-FF-COOH demonstrated the most potent activity against both planktonic (liquid, free-floating) and biofilm forms of bacteria, possessing minimal mammalian cell toxicity. NH2-FF-COOH resulted in greater than 3 Logi CFU/mL viable biofilm reduction (>99.9%) at 5 mg/mL and total biofilm kill at 10 mg/mL against Staphylococcus aureus after 24 h exposure. Scanning electron microscopy proved that antibiofilm activity was primarily due to the formation of ion channels and/or surfactant-like action, with NH2-FF-COOH and NH2-ff-COOH capable of degrading the biofilm matrix and disrupting cell membranes, leading to cell death in Gram-positive bacterial isolates. Peptide-based nanotubes are an exciting platform for drug delivery and engineering applications. This is the first report of using peptide nanotubes to eradicate bacterial biofilms and provides evidence of a new platform that may alleviate their negative impact throughout society. Statement of Significance We outline, for the first time, the antibiofilm activity of diphenylalanine (FF) peptide nanotubes. Biofilm bacteria exhibit high tolerance to antimicrobials 10-10,000 times that of free-flowing planktonic forms. Biofilm infections are difficult to treat using conventional antimicrobial agents, leading to a rise in antimicrobial resistance. We discovered nanotubes composed of NH2-FF-COOH demonstrated potent activity against staphylococcal biofilms implicated in hospital infections, resulting in complete kill at concentrations of 10 mg/mL. Carboxylic acid terminated FF nanotubes were able to destroy the exopolysaccharide architecture of staphylococcal biofilms expressing minimal toxicity, highlighting their potential for use in patients. Amidated (NH2-FF-NH2) forms demonstrated reduced antibiofilm efficacy and significant toxicity. These results contribute significantly to the development of innovative antibacterial technologies and peptide nanomaterials. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:96 / 105
页数:10
相关论文
共 52 条
[1]  
Adler-Abramovich L, 2014, CHEM SOC REV, V43, P6881, DOI 10.1039/c4cs00164h
[2]   Application of atmospheric pressure nonthermal plasma for the in vitro eradication of bacterial biofilms [J].
Alkawareek, Mahmoud Y. ;
Algwari, Qais T. ;
Gorman, Sean P. ;
Graham, William G. ;
O'Connell, Deborah ;
Gilmore, Brendan F. .
FEMS IMMUNOLOGY AND MEDICAL MICROBIOLOGY, 2012, 65 (02) :381-384
[3]   Atmospheric pressure, nonthermal plasma inactivation of MS2 bacteriophage: effect of oxygen concentration on virucidal activity [J].
Alshraiedeh, N. H. ;
Alkawareek, M. Y. ;
Gorman, S. P. ;
Graham, W. G. ;
Gilmore, B. F. .
JOURNAL OF APPLIED MICROBIOLOGY, 2013, 115 (06) :1420-1426
[4]   Particle shape enhances specificity of antibody-displaying nanoparticles [J].
Barua, Sutapa ;
Yoo, Jin-Wook ;
Kolhar, Poornima ;
Wakankar, Aditya ;
Gokarn, Yatin R. ;
Mitragotri, Samir .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (09) :3270-3275
[5]  
Centers for Disease Control and Prevention, 2015, NAT ACT PLAN COMB AN
[6]   The Calgary Biofilm Device: New technology for rapid determination of antibiotic susceptibilities of bacterial biofilms [J].
Ceri, H ;
Olson, ME ;
Stremick, C ;
Read, RR ;
Morck, D ;
Buret, A .
JOURNAL OF CLINICAL MICROBIOLOGY, 1999, 37 (06) :1771-1776
[7]   Extracellular DNA Shields against Aminoglycosides in Pseudomonas aeruginosa Biofilms [J].
Chiang, Wen-Chi ;
Nilsson, Martin ;
Jensen, Peter Ostrup ;
Hoiby, Niels ;
Nielsen, Thomas E. ;
Givskov, Michael ;
Tolker-Nielsen, Tim .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2013, 57 (05) :2352-2361
[8]   Antimicrobial Peptides: Their Role as Infection-Selective Tracers for Molecular Imaging [J].
Ebenhan, Thomas ;
Gheysens, Olivier ;
Kruger, Hendrick Gert ;
Zeevaart, Jan Rijn ;
Sathekge, Mike Machaba .
BIOMED RESEARCH INTERNATIONAL, 2014, 2014
[9]   Lipid domains in bacterial membranes and the action of antimicrobial agents [J].
Epand, Richard M. ;
Epand, Raquel F. .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2009, 1788 (01) :289-294
[10]   Isomerization of an Antimicrobial Peptide Broadens Antimicrobial Spectrum to Gram-Positive Bacterial Pathogens [J].
Falciani, Chiara ;
Lozzi, Luisa ;
Pollini, Simona ;
Luca, Vincenzo ;
Carnicelli, Veronica ;
Brunetti, Jlenia ;
Lelli, Barbara ;
Bindi, Stefano ;
Scali, Silvia ;
Di Giulio, Antonio ;
Rossolini, Gian Maria ;
Mangoni, Maria Luisa ;
Bracci, Luisa ;
Pini, Alessandro .
PLOS ONE, 2012, 7 (10)