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Multi-directional electrodeposited gold nanospikes for antibacterial surface applications

The incorporation of high-aspect-ratio nanostructures across surfaces has been widely reported to impart antibacterial characteristics to a substratum. This occurs because the presence of such nanostructures can induce the mechanical rupture of attaching bacteria, causing cell death. As such, the de...

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Autores principales: Elbourne, Aaron, Coyle, Victoria E., Truong, Vi Khanh, Sabri, Ylias M., Kandjani, Ahmad E., Bhargava, Suresh K., Ivanova, Elena P., Crawford, Russell J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473181/
https://www.ncbi.nlm.nih.gov/pubmed/36132449
http://dx.doi.org/10.1039/c8na00124c
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author Elbourne, Aaron
Coyle, Victoria E.
Truong, Vi Khanh
Sabri, Ylias M.
Kandjani, Ahmad E.
Bhargava, Suresh K.
Ivanova, Elena P.
Crawford, Russell J.
author_facet Elbourne, Aaron
Coyle, Victoria E.
Truong, Vi Khanh
Sabri, Ylias M.
Kandjani, Ahmad E.
Bhargava, Suresh K.
Ivanova, Elena P.
Crawford, Russell J.
author_sort Elbourne, Aaron
collection PubMed
description The incorporation of high-aspect-ratio nanostructures across surfaces has been widely reported to impart antibacterial characteristics to a substratum. This occurs because the presence of such nanostructures can induce the mechanical rupture of attaching bacteria, causing cell death. As such, the development of high-efficacy antibacterial nano-architectures fabricated on a variety of biologically relevant materials is critical to the wider acceptance of this technology. In this study, we report the antibacterial behavior of a series of substrata containing multi-directional electrodeposited gold (Au) nanospikes, as both a function of deposition time and precursor concentration. Firstly, the bactericidal efficacy of substrata containing Au nanospikes was assessed as a function of deposition time to elucidate the nanopattern that exhibited the greatest degree of biocidal activity. Here, it was established that multi-directional nanospikes with an average height of ∼302 nm ± 57 nm (formed after a deposition time of 540 s) exhibited the greatest level of biocidal activity, with ∼88% ± 8% of the bacterial cells being inactivated. The deposition time was then kept constant, while the concentration of the HAuCl(4) and Pb(CH(3)COO)(2) precursor materials (used for the formation of the Au nanospikes) was varied, resulting in differing nanospike architectures. Altering the Pb(CH(3)COO)(2) precursor concentration produced multi-directional nanostructures with a wider distribution of heights, which increased the average antibacterial efficacy against both Gram-negative Pseudomonas aeruginosa and Gram-positive Staphylococcus aureus bacteria. Importantly, the in situ electrochemical fabrication method used in this work is robust and straightforward, and is able to produce highly reproducible antibacterial surfaces. The results of this research will assist in the wider utilization of mechano-responsive nano-architectures for antimicrobial surface technologies.
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spelling pubmed-94731812022-09-20 Multi-directional electrodeposited gold nanospikes for antibacterial surface applications Elbourne, Aaron Coyle, Victoria E. Truong, Vi Khanh Sabri, Ylias M. Kandjani, Ahmad E. Bhargava, Suresh K. Ivanova, Elena P. Crawford, Russell J. Nanoscale Adv Chemistry The incorporation of high-aspect-ratio nanostructures across surfaces has been widely reported to impart antibacterial characteristics to a substratum. This occurs because the presence of such nanostructures can induce the mechanical rupture of attaching bacteria, causing cell death. As such, the development of high-efficacy antibacterial nano-architectures fabricated on a variety of biologically relevant materials is critical to the wider acceptance of this technology. In this study, we report the antibacterial behavior of a series of substrata containing multi-directional electrodeposited gold (Au) nanospikes, as both a function of deposition time and precursor concentration. Firstly, the bactericidal efficacy of substrata containing Au nanospikes was assessed as a function of deposition time to elucidate the nanopattern that exhibited the greatest degree of biocidal activity. Here, it was established that multi-directional nanospikes with an average height of ∼302 nm ± 57 nm (formed after a deposition time of 540 s) exhibited the greatest level of biocidal activity, with ∼88% ± 8% of the bacterial cells being inactivated. The deposition time was then kept constant, while the concentration of the HAuCl(4) and Pb(CH(3)COO)(2) precursor materials (used for the formation of the Au nanospikes) was varied, resulting in differing nanospike architectures. Altering the Pb(CH(3)COO)(2) precursor concentration produced multi-directional nanostructures with a wider distribution of heights, which increased the average antibacterial efficacy against both Gram-negative Pseudomonas aeruginosa and Gram-positive Staphylococcus aureus bacteria. Importantly, the in situ electrochemical fabrication method used in this work is robust and straightforward, and is able to produce highly reproducible antibacterial surfaces. The results of this research will assist in the wider utilization of mechano-responsive nano-architectures for antimicrobial surface technologies. RSC 2018-08-21 /pmc/articles/PMC9473181/ /pubmed/36132449 http://dx.doi.org/10.1039/c8na00124c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Elbourne, Aaron
Coyle, Victoria E.
Truong, Vi Khanh
Sabri, Ylias M.
Kandjani, Ahmad E.
Bhargava, Suresh K.
Ivanova, Elena P.
Crawford, Russell J.
Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title_full Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title_fullStr Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title_full_unstemmed Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title_short Multi-directional electrodeposited gold nanospikes for antibacterial surface applications
title_sort multi-directional electrodeposited gold nanospikes for antibacterial surface applications
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473181/
https://www.ncbi.nlm.nih.gov/pubmed/36132449
http://dx.doi.org/10.1039/c8na00124c
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