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Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study

Bivalent cations are known to affect the structural and mechanical properties of biofilms. In order to reveal the impact of Fe(2+) ions within the cultivation medium on biofilm development, structure and stability, Bacillus subtilis biofilms were cultivated in mini-fluidic flow cells. Two different...

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Autores principales: Gierl, Luisa, Horn, Harald, Wagner, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699539/
https://www.ncbi.nlm.nih.gov/pubmed/36422304
http://dx.doi.org/10.3390/microorganisms10112234
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author Gierl, Luisa
Horn, Harald
Wagner, Michael
author_facet Gierl, Luisa
Horn, Harald
Wagner, Michael
author_sort Gierl, Luisa
collection PubMed
description Bivalent cations are known to affect the structural and mechanical properties of biofilms. In order to reveal the impact of Fe(2+) ions within the cultivation medium on biofilm development, structure and stability, Bacillus subtilis biofilms were cultivated in mini-fluidic flow cells. Two different Fe(2+) inflow concentrations (0.25 and 2.5 mg/L, respectively) and wall shear stress levels (0.05 and 0.27 Pa, respectively) were tested. Mesoscopic biofilm structure was determined daily in situ and non-invasively by means of optical coherence tomography. A set of ten structural parameters was used to quantify biofilm structure, its development and change. The study focused on characterizing biofilm structure and development at the mesoscale (mm-range). Therefore, biofilm replicates (n = 10) were cultivated and analyzed. Three hypotheses were defined in order to estimate the effect of Fe(2+) inflow concentration and/or wall shear stress on biofilm development and structure, respectively. It was not the intention to investigate and describe the underlying mechanisms of iron incorporation as this would require a different set of tools applied at microscopic levels as well as the use of, i.e., omic approaches. Fe(2+) addition influenced biofilm development (e.g., biofilm accumulation) and structure markedly. Experiments revealed the accumulation of FeO(OH) within the biofilm matrix and a positive correlation of Fe(2+) inflow concentration and biofilm accumulation. In more detail, independent of the wall shear stress applied during cultivation, biofilms grew approximately four times thicker at 2.5 mg Fe(2+)/L (44.8 µmol/L; high inflow concentration) compared to the low Fe(2+) inflow concentration of 0.25 mg Fe(2+)/L (4.48 µmol/L). This finding was statistically verified (Scheirer–Ray–Hare test, ANOVA) and hints at a higher stability of Bacillus subtilis biofilms (e.g., elevated cohesive and adhesive strength) when grown at elevated Fe(2+) inflow concentrations.
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spelling pubmed-96995392022-11-26 Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study Gierl, Luisa Horn, Harald Wagner, Michael Microorganisms Article Bivalent cations are known to affect the structural and mechanical properties of biofilms. In order to reveal the impact of Fe(2+) ions within the cultivation medium on biofilm development, structure and stability, Bacillus subtilis biofilms were cultivated in mini-fluidic flow cells. Two different Fe(2+) inflow concentrations (0.25 and 2.5 mg/L, respectively) and wall shear stress levels (0.05 and 0.27 Pa, respectively) were tested. Mesoscopic biofilm structure was determined daily in situ and non-invasively by means of optical coherence tomography. A set of ten structural parameters was used to quantify biofilm structure, its development and change. The study focused on characterizing biofilm structure and development at the mesoscale (mm-range). Therefore, biofilm replicates (n = 10) were cultivated and analyzed. Three hypotheses were defined in order to estimate the effect of Fe(2+) inflow concentration and/or wall shear stress on biofilm development and structure, respectively. It was not the intention to investigate and describe the underlying mechanisms of iron incorporation as this would require a different set of tools applied at microscopic levels as well as the use of, i.e., omic approaches. Fe(2+) addition influenced biofilm development (e.g., biofilm accumulation) and structure markedly. Experiments revealed the accumulation of FeO(OH) within the biofilm matrix and a positive correlation of Fe(2+) inflow concentration and biofilm accumulation. In more detail, independent of the wall shear stress applied during cultivation, biofilms grew approximately four times thicker at 2.5 mg Fe(2+)/L (44.8 µmol/L; high inflow concentration) compared to the low Fe(2+) inflow concentration of 0.25 mg Fe(2+)/L (4.48 µmol/L). This finding was statistically verified (Scheirer–Ray–Hare test, ANOVA) and hints at a higher stability of Bacillus subtilis biofilms (e.g., elevated cohesive and adhesive strength) when grown at elevated Fe(2+) inflow concentrations. MDPI 2022-11-11 /pmc/articles/PMC9699539/ /pubmed/36422304 http://dx.doi.org/10.3390/microorganisms10112234 Text en © 2022 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
Gierl, Luisa
Horn, Harald
Wagner, Michael
Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title_full Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title_fullStr Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title_full_unstemmed Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title_short Impact of Fe(2+) and Shear Stress on the Development and Mesoscopic Structure of Biofilms—A Bacillus subtilis Case Study
title_sort impact of fe(2+) and shear stress on the development and mesoscopic structure of biofilms—a bacillus subtilis case study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9699539/
https://www.ncbi.nlm.nih.gov/pubmed/36422304
http://dx.doi.org/10.3390/microorganisms10112234
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