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The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal

Biofilm control is mainly based on chemical disinfection, without a clear understanding of the role of the biocides and process conditions on biofilm removal. This study aims to understand the effects of a biocide (benzyldimethyldodecyl ammonium chloride—BDMDAC) and mechanical treatment (an increase...

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Autores principales: Gomes, Inês B., Lemos, Madalena, Fernandes, Susana, Borges, Anabela, Simões, Lúcia C., Simões, Manuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8228086/
https://www.ncbi.nlm.nih.gov/pubmed/34072497
http://dx.doi.org/10.3390/microorganisms9061174
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author Gomes, Inês B.
Lemos, Madalena
Fernandes, Susana
Borges, Anabela
Simões, Lúcia C.
Simões, Manuel
author_facet Gomes, Inês B.
Lemos, Madalena
Fernandes, Susana
Borges, Anabela
Simões, Lúcia C.
Simões, Manuel
author_sort Gomes, Inês B.
collection PubMed
description Biofilm control is mainly based on chemical disinfection, without a clear understanding of the role of the biocides and process conditions on biofilm removal. This study aims to understand the effects of a biocide (benzyldimethyldodecyl ammonium chloride—BDMDAC) and mechanical treatment (an increase of shear stress - [Formula: see text]) on single- and dual-species biofilms formed by Bacillus cereus and Pseudomonas fluorescens on high-density polyethene (HDPE). BDMDAC effects were initially assessed on bacterial physicochemical properties and initial adhesion ability. Then, mature biofilms were formed on a rotating cylinder reactor (RCR) for 7 days to assess the effects of chemical and mechanical treatments, and the combination of both on biofilm removal. The results demonstrated that the initial adhesion does not predict the formation of mature biofilms. It was observed that the dual-species biofilms were the most susceptible to BDMDAC exposure. The exposure to increasing [Formula: see text] emphasised the mechanical stability of biofilms, as lower values of [Formula: see text] (1.66 Pa) caused high biofilm erosion and higher [Formula: see text] values (17.7 Pa) seem to compress the remaining biofilm. In general, the combination of BDMDAC and the mechanical treatment was synergic in increasing biofilm removal. However, these were insufficient to cause total biofilm removal (100%; an average standard deviation of 11% for the method accuracy should be considered) from HDPE.
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spelling pubmed-82280862021-06-26 The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal Gomes, Inês B. Lemos, Madalena Fernandes, Susana Borges, Anabela Simões, Lúcia C. Simões, Manuel Microorganisms Article Biofilm control is mainly based on chemical disinfection, without a clear understanding of the role of the biocides and process conditions on biofilm removal. This study aims to understand the effects of a biocide (benzyldimethyldodecyl ammonium chloride—BDMDAC) and mechanical treatment (an increase of shear stress - [Formula: see text]) on single- and dual-species biofilms formed by Bacillus cereus and Pseudomonas fluorescens on high-density polyethene (HDPE). BDMDAC effects were initially assessed on bacterial physicochemical properties and initial adhesion ability. Then, mature biofilms were formed on a rotating cylinder reactor (RCR) for 7 days to assess the effects of chemical and mechanical treatments, and the combination of both on biofilm removal. The results demonstrated that the initial adhesion does not predict the formation of mature biofilms. It was observed that the dual-species biofilms were the most susceptible to BDMDAC exposure. The exposure to increasing [Formula: see text] emphasised the mechanical stability of biofilms, as lower values of [Formula: see text] (1.66 Pa) caused high biofilm erosion and higher [Formula: see text] values (17.7 Pa) seem to compress the remaining biofilm. In general, the combination of BDMDAC and the mechanical treatment was synergic in increasing biofilm removal. However, these were insufficient to cause total biofilm removal (100%; an average standard deviation of 11% for the method accuracy should be considered) from HDPE. MDPI 2021-05-29 /pmc/articles/PMC8228086/ /pubmed/34072497 http://dx.doi.org/10.3390/microorganisms9061174 Text en © 2021 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
Gomes, Inês B.
Lemos, Madalena
Fernandes, Susana
Borges, Anabela
Simões, Lúcia C.
Simões, Manuel
The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title_full The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title_fullStr The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title_full_unstemmed The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title_short The Effects of Chemical and Mechanical Stresses on Bacillus cereus and Pseudomonas fluorescens Single- and Dual-Species Biofilm Removal
title_sort effects of chemical and mechanical stresses on bacillus cereus and pseudomonas fluorescens single- and dual-species biofilm removal
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8228086/
https://www.ncbi.nlm.nih.gov/pubmed/34072497
http://dx.doi.org/10.3390/microorganisms9061174
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