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Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition

Surface microbial colonization and its potential biofilm formation are currently a major unsolved problem, causing almost 75% of human infectious diseases. Pathogenic biofilms are capable of surviving high antibiotic doses, resulting in inefficient treatments and, subsequently, raised infection prev...

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Autores principales: Arenas-Vivo, Ana, Celis Arias, Vanessa, Amariei, Georgiana, Rosal, Roberto, Izquierdo-Barba, Isabel, Hidalgo, Tania, Vallet-Regí, María, Beltrán, Hiram I., Loera-Serna, Sandra, Horcajada, Patricia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9866433/
https://www.ncbi.nlm.nih.gov/pubmed/36678928
http://dx.doi.org/10.3390/pharmaceutics15010301
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author Arenas-Vivo, Ana
Celis Arias, Vanessa
Amariei, Georgiana
Rosal, Roberto
Izquierdo-Barba, Isabel
Hidalgo, Tania
Vallet-Regí, María
Beltrán, Hiram I.
Loera-Serna, Sandra
Horcajada, Patricia
author_facet Arenas-Vivo, Ana
Celis Arias, Vanessa
Amariei, Georgiana
Rosal, Roberto
Izquierdo-Barba, Isabel
Hidalgo, Tania
Vallet-Regí, María
Beltrán, Hiram I.
Loera-Serna, Sandra
Horcajada, Patricia
author_sort Arenas-Vivo, Ana
collection PubMed
description Surface microbial colonization and its potential biofilm formation are currently a major unsolved problem, causing almost 75% of human infectious diseases. Pathogenic biofilms are capable of surviving high antibiotic doses, resulting in inefficient treatments and, subsequently, raised infection prevalence rates. Antibacterial coatings have become a promising strategy against the biofilm formation in biomedical devices due to their biocidal activity without compromising the bulk material. Here, we propose for the first time a silver-based metal–organic framework (MOF; here denoted AgBDC) showing original antifouling properties able to suppress not only the initial bacterial adhesion, but also the potential surface contamination. Firstly, the AgBDC stability (colloidal, structural and chemical) was confirmed under bacteria culture conditions by using agar diffusion and colony counting assays, evidencing its biocide effect against the challenging E. coli, one of the main representative indicators of Gram-negative resistance bacteria. Then, this material was shaped as homogeneous spin-coated AgBDC thin film, investigating its antifouling and biocide features using a combination of complementary procedures such as colony counting, optical density or confocal scanning microscopy, which allowed to visualize for the first time the biofilm impact generated by MOFs via a specific fluorochrome, calcofluor.
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spelling pubmed-98664332023-01-22 Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition Arenas-Vivo, Ana Celis Arias, Vanessa Amariei, Georgiana Rosal, Roberto Izquierdo-Barba, Isabel Hidalgo, Tania Vallet-Regí, María Beltrán, Hiram I. Loera-Serna, Sandra Horcajada, Patricia Pharmaceutics Article Surface microbial colonization and its potential biofilm formation are currently a major unsolved problem, causing almost 75% of human infectious diseases. Pathogenic biofilms are capable of surviving high antibiotic doses, resulting in inefficient treatments and, subsequently, raised infection prevalence rates. Antibacterial coatings have become a promising strategy against the biofilm formation in biomedical devices due to their biocidal activity without compromising the bulk material. Here, we propose for the first time a silver-based metal–organic framework (MOF; here denoted AgBDC) showing original antifouling properties able to suppress not only the initial bacterial adhesion, but also the potential surface contamination. Firstly, the AgBDC stability (colloidal, structural and chemical) was confirmed under bacteria culture conditions by using agar diffusion and colony counting assays, evidencing its biocide effect against the challenging E. coli, one of the main representative indicators of Gram-negative resistance bacteria. Then, this material was shaped as homogeneous spin-coated AgBDC thin film, investigating its antifouling and biocide features using a combination of complementary procedures such as colony counting, optical density or confocal scanning microscopy, which allowed to visualize for the first time the biofilm impact generated by MOFs via a specific fluorochrome, calcofluor. MDPI 2023-01-16 /pmc/articles/PMC9866433/ /pubmed/36678928 http://dx.doi.org/10.3390/pharmaceutics15010301 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
Arenas-Vivo, Ana
Celis Arias, Vanessa
Amariei, Georgiana
Rosal, Roberto
Izquierdo-Barba, Isabel
Hidalgo, Tania
Vallet-Regí, María
Beltrán, Hiram I.
Loera-Serna, Sandra
Horcajada, Patricia
Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title_full Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title_fullStr Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title_full_unstemmed Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title_short Antiadherent AgBDC Metal–Organic Framework Coating for Escherichia coli Biofilm Inhibition
title_sort antiadherent agbdc metal–organic framework coating for escherichia coli biofilm inhibition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9866433/
https://www.ncbi.nlm.nih.gov/pubmed/36678928
http://dx.doi.org/10.3390/pharmaceutics15010301
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