Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge

To combat infections on biomedical devices, antimicrobial coatings have attracted considerable attention, including coatings comprising naturally occurring antimicrobial peptides (AMPs). In this study the aim was to explore performance upon extended challenge by bacteria growing in media above sampl...

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Main Authors: Stefani S. Griesser, Marek Jasieniak, Krasimir Vasilev, Hans J. Griesser
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Coatings
Subjects:
Online Access:https://www.mdpi.com/2079-6412/11/1/68
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spelling doaj-58dff18b1a144646bb3ac17b007f68e62021-01-09T00:03:53ZengMDPI AGCoatings2079-64122021-01-0111686810.3390/coatings11010068Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial ChallengeStefani S. Griesser0Marek Jasieniak1Krasimir Vasilev2Hans J. Griesser3Future Industries Institute, University of South Australia, Mawson Lakes, SA 5095, AustraliaFuture Industries Institute, University of South Australia, Mawson Lakes, SA 5095, AustraliaFuture Industries Institute, University of South Australia, Mawson Lakes, SA 5095, AustraliaFuture Industries Institute, University of South Australia, Mawson Lakes, SA 5095, AustraliaTo combat infections on biomedical devices, antimicrobial coatings have attracted considerable attention, including coatings comprising naturally occurring antimicrobial peptides (AMPs). In this study the aim was to explore performance upon extended challenge by bacteria growing in media above samples. The AMPs LL37, Magainin 2, and Parasin 1 were selected on the basis of well-known membrane disruption activity in solution and were covalently grafted onto a plasma polymer platform, which enables application of this multilayer coating strategy to a wide range of biomaterials. Detailed surface analyses were performed to verify the intended outcomes of the coating sequence. Samples were challenged by incubation in bacterial growth media for 5 and 20 h. Compared with the control plasma polymer surface, all three grafted AMP coatings showed considerable reductions in bacterial colonization even at the high bacterial challenge of initial seeding at 1 × 10<sup>7</sup> CFU, but there were increasing numbers of dead bacteria attached to the surface. All three grafted AMP coatings were found to be non-toxic to primary fibroblasts. These coatings thus could be useful to produce antibacterial surface coatings for biomaterials, though possible consequences arising from the presence of dead bacteria need to be studied further, and compared to non-fouling coatings that avoid attachment of dead bacteria.https://www.mdpi.com/2079-6412/11/1/68antibacterial coatingantimicrobial peptideplasma polymerLL 37MagaininParasin
collection DOAJ
language English
format Article
sources DOAJ
author Stefani S. Griesser
Marek Jasieniak
Krasimir Vasilev
Hans J. Griesser
spellingShingle Stefani S. Griesser
Marek Jasieniak
Krasimir Vasilev
Hans J. Griesser
Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
Coatings
antibacterial coating
antimicrobial peptide
plasma polymer
LL 37
Magainin
Parasin
author_facet Stefani S. Griesser
Marek Jasieniak
Krasimir Vasilev
Hans J. Griesser
author_sort Stefani S. Griesser
title Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
title_short Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
title_full Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
title_fullStr Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
title_full_unstemmed Antimicrobial Peptides Grafted onto a Plasma Polymer Interlayer Platform: Performance upon Extended Bacterial Challenge
title_sort antimicrobial peptides grafted onto a plasma polymer interlayer platform: performance upon extended bacterial challenge
publisher MDPI AG
series Coatings
issn 2079-6412
publishDate 2021-01-01
description To combat infections on biomedical devices, antimicrobial coatings have attracted considerable attention, including coatings comprising naturally occurring antimicrobial peptides (AMPs). In this study the aim was to explore performance upon extended challenge by bacteria growing in media above samples. The AMPs LL37, Magainin 2, and Parasin 1 were selected on the basis of well-known membrane disruption activity in solution and were covalently grafted onto a plasma polymer platform, which enables application of this multilayer coating strategy to a wide range of biomaterials. Detailed surface analyses were performed to verify the intended outcomes of the coating sequence. Samples were challenged by incubation in bacterial growth media for 5 and 20 h. Compared with the control plasma polymer surface, all three grafted AMP coatings showed considerable reductions in bacterial colonization even at the high bacterial challenge of initial seeding at 1 × 10<sup>7</sup> CFU, but there were increasing numbers of dead bacteria attached to the surface. All three grafted AMP coatings were found to be non-toxic to primary fibroblasts. These coatings thus could be useful to produce antibacterial surface coatings for biomaterials, though possible consequences arising from the presence of dead bacteria need to be studied further, and compared to non-fouling coatings that avoid attachment of dead bacteria.
topic antibacterial coating
antimicrobial peptide
plasma polymer
LL 37
Magainin
Parasin
url https://www.mdpi.com/2079-6412/11/1/68
work_keys_str_mv AT stefanisgriesser antimicrobialpeptidesgraftedontoaplasmapolymerinterlayerplatformperformanceuponextendedbacterialchallenge
AT marekjasieniak antimicrobialpeptidesgraftedontoaplasmapolymerinterlayerplatformperformanceuponextendedbacterialchallenge
AT krasimirvasilev antimicrobialpeptidesgraftedontoaplasmapolymerinterlayerplatformperformanceuponextendedbacterialchallenge
AT hansjgriesser antimicrobialpeptidesgraftedontoaplasmapolymerinterlayerplatformperformanceuponextendedbacterialchallenge
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