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Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation

Microbial colonization of surfaces is a sanitary and industrial issue for many applications, leading to product contamination and human infections. When microorganisms closely interact with a surface, they start to produce an exo-polysaccaridic matrix to adhere to and protect themselves from adverse...

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Autores principales: Marra, Daniele, Perna, Irene, Pota, Giulio, Vitiello, Giuseppe, Pezzella, Alessandro, Toscano, Giuseppe, Luciani, Giuseppina, Caserta, Sergio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10057769/
https://www.ncbi.nlm.nih.gov/pubmed/36985196
http://dx.doi.org/10.3390/microorganisms11030621
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author Marra, Daniele
Perna, Irene
Pota, Giulio
Vitiello, Giuseppe
Pezzella, Alessandro
Toscano, Giuseppe
Luciani, Giuseppina
Caserta, Sergio
author_facet Marra, Daniele
Perna, Irene
Pota, Giulio
Vitiello, Giuseppe
Pezzella, Alessandro
Toscano, Giuseppe
Luciani, Giuseppina
Caserta, Sergio
author_sort Marra, Daniele
collection PubMed
description Microbial colonization of surfaces is a sanitary and industrial issue for many applications, leading to product contamination and human infections. When microorganisms closely interact with a surface, they start to produce an exo-polysaccaridic matrix to adhere to and protect themselves from adverse environmental conditions. This type of structure is called a biofilm. The aim of our work is to investigate novel technologies able to prevent biofilm formation by surface coatings. We coated glass surfaces with melanin-ZnO(2), melanin-TiO(2), and TiO(2) hybrid nanoparticles. The functionalization was performed using cold plasma to activate glass-substrate-coated surfaces, that were characterized by performing water and soybean oil wetting tests. A quantitative characterization of the antibiofilm properties was done using Pseudomonas fluorescens AR 11 as a model organism. Biofilm morphologies were observed using confocal laser scanning microscopy and image analysis techniques were used to obtain quantitative morphological parameters. The results highlight the efficacy of the proposed surface coating to prevent biofilm formation. Melanin-TiO(2) proved to be the most efficient among the particles investigated. Our results can be a valuable support for future implementation of the technique proposed here in an extended range of applications that may include further testing on other strains and other support materials.
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spelling pubmed-100577692023-03-30 Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation Marra, Daniele Perna, Irene Pota, Giulio Vitiello, Giuseppe Pezzella, Alessandro Toscano, Giuseppe Luciani, Giuseppina Caserta, Sergio Microorganisms Article Microbial colonization of surfaces is a sanitary and industrial issue for many applications, leading to product contamination and human infections. When microorganisms closely interact with a surface, they start to produce an exo-polysaccaridic matrix to adhere to and protect themselves from adverse environmental conditions. This type of structure is called a biofilm. The aim of our work is to investigate novel technologies able to prevent biofilm formation by surface coatings. We coated glass surfaces with melanin-ZnO(2), melanin-TiO(2), and TiO(2) hybrid nanoparticles. The functionalization was performed using cold plasma to activate glass-substrate-coated surfaces, that were characterized by performing water and soybean oil wetting tests. A quantitative characterization of the antibiofilm properties was done using Pseudomonas fluorescens AR 11 as a model organism. Biofilm morphologies were observed using confocal laser scanning microscopy and image analysis techniques were used to obtain quantitative morphological parameters. The results highlight the efficacy of the proposed surface coating to prevent biofilm formation. Melanin-TiO(2) proved to be the most efficient among the particles investigated. Our results can be a valuable support for future implementation of the technique proposed here in an extended range of applications that may include further testing on other strains and other support materials. MDPI 2023-02-28 /pmc/articles/PMC10057769/ /pubmed/36985196 http://dx.doi.org/10.3390/microorganisms11030621 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Marra, Daniele
Perna, Irene
Pota, Giulio
Vitiello, Giuseppe
Pezzella, Alessandro
Toscano, Giuseppe
Luciani, Giuseppina
Caserta, Sergio
Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title_full Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title_fullStr Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title_full_unstemmed Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title_short Nanoparticle Coatings on Glass Surfaces to Prevent Pseudomonas fluorescens AR 11 Biofilm Formation
title_sort nanoparticle coatings on glass surfaces to prevent pseudomonas fluorescens ar 11 biofilm formation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10057769/
https://www.ncbi.nlm.nih.gov/pubmed/36985196
http://dx.doi.org/10.3390/microorganisms11030621
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