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Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E

Virucidal thin-film coatings have the potential to inactivate pathogens on surfaces, preventing or slowing their spread. Six potential nanoscale antiviral coatings, Cu, Cu(2)O, Ag, ZnO, zinc tin oxide (ZTO), and TiO(2), are deposited on glass, and their ability to inactivate the HCoV-229E human coro...

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Autores principales: Delumeau, Louis-Vincent, Asgarimoghaddam, Hatameh, Alkie, Tamiru, Jones, Alexander James Bryan, Lum, Samantha, Mistry, Kissan, Aucoin, Marc G., DeWitte-Orr, Stephanie, Musselman, Kevin P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AIP Publishing LLC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8638753/
https://www.ncbi.nlm.nih.gov/pubmed/34868741
http://dx.doi.org/10.1063/5.0056138
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author Delumeau, Louis-Vincent
Asgarimoghaddam, Hatameh
Alkie, Tamiru
Jones, Alexander James Bryan
Lum, Samantha
Mistry, Kissan
Aucoin, Marc G.
DeWitte-Orr, Stephanie
Musselman, Kevin P.
author_facet Delumeau, Louis-Vincent
Asgarimoghaddam, Hatameh
Alkie, Tamiru
Jones, Alexander James Bryan
Lum, Samantha
Mistry, Kissan
Aucoin, Marc G.
DeWitte-Orr, Stephanie
Musselman, Kevin P.
author_sort Delumeau, Louis-Vincent
collection PubMed
description Virucidal thin-film coatings have the potential to inactivate pathogens on surfaces, preventing or slowing their spread. Six potential nanoscale antiviral coatings, Cu, Cu(2)O, Ag, ZnO, zinc tin oxide (ZTO), and TiO(2), are deposited on glass, and their ability to inactivate the HCoV-229E human coronavirus is assessed using two methods. In one method, droplets containing HCoV-229E are deposited on thin-film coatings and then collected after various stages of desiccation. In the second method, the thin-film coatings are soaked in the virus supernatant for 24 h. The Cu and Cu(2)O coatings demonstrate clear virucidal behavior, and it is shown that controlled delamination and dissolution of the coating can enhance the virucidal effect. Cu is found to produce a faster and stronger virucidal effect than Cu(2)O in the droplet tests (3 log reduction in the viral titer after 1 h of exposure), which is attributed, in part, to the differences in film adhesion that result in delamination of the Cu film from the glass and accelerated dissolution in the droplet. Despite Ag, ZnO, and TiO(2) being frequently cited antimicrobial materials, exposure to the Ag, ZnO, ZTO, and TiO(2) coatings results in no discernible change to the infectivity of the coronavirus under the conditions tested. Thin-film Cu coatings are also applied to the polypropylene fabrics of N95 respirators, and droplet tests are performed. The Cu fabric coating reduces the infectivity of the virus; it results in a 1 order-of-magnitude reduction in the viral titer within 15 min with a 2 order-of-magnitude reduction after 1 h.
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spelling pubmed-86387532021-12-03 Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E Delumeau, Louis-Vincent Asgarimoghaddam, Hatameh Alkie, Tamiru Jones, Alexander James Bryan Lum, Samantha Mistry, Kissan Aucoin, Marc G. DeWitte-Orr, Stephanie Musselman, Kevin P. APL Mater Articles Virucidal thin-film coatings have the potential to inactivate pathogens on surfaces, preventing or slowing their spread. Six potential nanoscale antiviral coatings, Cu, Cu(2)O, Ag, ZnO, zinc tin oxide (ZTO), and TiO(2), are deposited on glass, and their ability to inactivate the HCoV-229E human coronavirus is assessed using two methods. In one method, droplets containing HCoV-229E are deposited on thin-film coatings and then collected after various stages of desiccation. In the second method, the thin-film coatings are soaked in the virus supernatant for 24 h. The Cu and Cu(2)O coatings demonstrate clear virucidal behavior, and it is shown that controlled delamination and dissolution of the coating can enhance the virucidal effect. Cu is found to produce a faster and stronger virucidal effect than Cu(2)O in the droplet tests (3 log reduction in the viral titer after 1 h of exposure), which is attributed, in part, to the differences in film adhesion that result in delamination of the Cu film from the glass and accelerated dissolution in the droplet. Despite Ag, ZnO, and TiO(2) being frequently cited antimicrobial materials, exposure to the Ag, ZnO, ZTO, and TiO(2) coatings results in no discernible change to the infectivity of the coronavirus under the conditions tested. Thin-film Cu coatings are also applied to the polypropylene fabrics of N95 respirators, and droplet tests are performed. The Cu fabric coating reduces the infectivity of the virus; it results in a 1 order-of-magnitude reduction in the viral titer within 15 min with a 2 order-of-magnitude reduction after 1 h. AIP Publishing LLC 2021-11-01 /pmc/articles/PMC8638753/ /pubmed/34868741 http://dx.doi.org/10.1063/5.0056138 Text en © 2021 Author(s). https://creativecommons.org/licenses/by/4.0/All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Articles
Delumeau, Louis-Vincent
Asgarimoghaddam, Hatameh
Alkie, Tamiru
Jones, Alexander James Bryan
Lum, Samantha
Mistry, Kissan
Aucoin, Marc G.
DeWitte-Orr, Stephanie
Musselman, Kevin P.
Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title_full Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title_fullStr Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title_full_unstemmed Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title_short Effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229E
title_sort effectiveness of antiviral metal and metal oxide thin-film coatings against human coronavirus 229e
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8638753/
https://www.ncbi.nlm.nih.gov/pubmed/34868741
http://dx.doi.org/10.1063/5.0056138
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