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Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface

The utilization of biomaterials in implanted blood-contacting medical devices often induces a persistent problem of microbial infection, which results from bacterial adhesion and biofilm formation on the surface of biomaterials. In this research, we developed new fluorinated alkoxyphosphazene materi...

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Autores principales: Tang, Meixian, Chen, Chen, Zhu, Jieru, Allcock, Harry R., Siedlecki, Christopher A., Xu, Li-Chong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7490642/
https://www.ncbi.nlm.nih.gov/pubmed/32995672
http://dx.doi.org/10.1016/j.bioactmat.2020.08.027
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author Tang, Meixian
Chen, Chen
Zhu, Jieru
Allcock, Harry R.
Siedlecki, Christopher A.
Xu, Li-Chong
author_facet Tang, Meixian
Chen, Chen
Zhu, Jieru
Allcock, Harry R.
Siedlecki, Christopher A.
Xu, Li-Chong
author_sort Tang, Meixian
collection PubMed
description The utilization of biomaterials in implanted blood-contacting medical devices often induces a persistent problem of microbial infection, which results from bacterial adhesion and biofilm formation on the surface of biomaterials. In this research, we developed new fluorinated alkoxyphosphazene materials, specifically poly[bis(octafluoropentoxy) phosphazene] (OFP) and crosslinkable OFP (X–OFP), with improved mechanical properties, and further modified the surface topography with ordered pillars to improve the antibacterial properties. Three X–OFP materials, X–OFP(3.3), X–OFP(8.1,) X–OFP(13.6), with different crosslinking densities were synthesized, and textured films with patterns of 500/500/600 nm (diameter/spacing/height) were fabricated via a two stage soft lithography molding process. Experiments with 3 bacterial strains: Staphylococcal epidermidis, Staphylococcal aureus, and Pseudomonas aeruginosa showed that bacterial adhesion coefficients were significantly lower on OFP and X–OFP smooth surfaces than on the polyurethane biomaterial, and surface texturing further reduced bacterial adhesion due to the reduction in accessible surface contact area. Furthermore the anti-bacterial adhesion effect shows a positive relationship with the crosslinking degree. Biofilm formation on the substrates was examined using a CDC biofilm reactor for 7 days and no biofilm formation was observed on textured X–OFP biomaterials. The results suggested that the combination of fluorocarbon chemistry and submicron topography modification in textured X–OFP materials may provide a practical approach to improve the biocompatibility of current biomaterials with significant reduction in risk of pathogenic infection.
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spelling pubmed-74906422020-09-28 Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface Tang, Meixian Chen, Chen Zhu, Jieru Allcock, Harry R. Siedlecki, Christopher A. Xu, Li-Chong Bioact Mater Article The utilization of biomaterials in implanted blood-contacting medical devices often induces a persistent problem of microbial infection, which results from bacterial adhesion and biofilm formation on the surface of biomaterials. In this research, we developed new fluorinated alkoxyphosphazene materials, specifically poly[bis(octafluoropentoxy) phosphazene] (OFP) and crosslinkable OFP (X–OFP), with improved mechanical properties, and further modified the surface topography with ordered pillars to improve the antibacterial properties. Three X–OFP materials, X–OFP(3.3), X–OFP(8.1,) X–OFP(13.6), with different crosslinking densities were synthesized, and textured films with patterns of 500/500/600 nm (diameter/spacing/height) were fabricated via a two stage soft lithography molding process. Experiments with 3 bacterial strains: Staphylococcal epidermidis, Staphylococcal aureus, and Pseudomonas aeruginosa showed that bacterial adhesion coefficients were significantly lower on OFP and X–OFP smooth surfaces than on the polyurethane biomaterial, and surface texturing further reduced bacterial adhesion due to the reduction in accessible surface contact area. Furthermore the anti-bacterial adhesion effect shows a positive relationship with the crosslinking degree. Biofilm formation on the substrates was examined using a CDC biofilm reactor for 7 days and no biofilm formation was observed on textured X–OFP biomaterials. The results suggested that the combination of fluorocarbon chemistry and submicron topography modification in textured X–OFP materials may provide a practical approach to improve the biocompatibility of current biomaterials with significant reduction in risk of pathogenic infection. KeAi Publishing 2020-09-08 /pmc/articles/PMC7490642/ /pubmed/32995672 http://dx.doi.org/10.1016/j.bioactmat.2020.08.027 Text en © 2020 [The Author/The Authors] http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Tang, Meixian
Chen, Chen
Zhu, Jieru
Allcock, Harry R.
Siedlecki, Christopher A.
Xu, Li-Chong
Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title_full Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title_fullStr Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title_full_unstemmed Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title_short Inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
title_sort inhibition of bacterial adhesion and biofilm formation by a textured fluorinated alkoxyphosphazene surface
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7490642/
https://www.ncbi.nlm.nih.gov/pubmed/32995672
http://dx.doi.org/10.1016/j.bioactmat.2020.08.027
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