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Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions

There is intense interest in developing long-lasting, potent, and broad-spectrum antiviral disinfectants. Ceria nanoparticles (CNPs) can undergo surface redox reactions (Ce(3+) ↔ Ce(4+)) to generate ROS without requiring an external driving force. Here, we tested the mechanism behind our prior findi...

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Autores principales: Fox, Candace R., Kedarinath, Kritika, Neal, Craig J., Sheiber, Jeremy, Kolanthai, Elayaraja, Kumar, Udit, Drake, Christina, Seal, Sudipta, Parks, Griffith D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343717/
https://www.ncbi.nlm.nih.gov/pubmed/37446852
http://dx.doi.org/10.3390/molecules28135190
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author Fox, Candace R.
Kedarinath, Kritika
Neal, Craig J.
Sheiber, Jeremy
Kolanthai, Elayaraja
Kumar, Udit
Drake, Christina
Seal, Sudipta
Parks, Griffith D.
author_facet Fox, Candace R.
Kedarinath, Kritika
Neal, Craig J.
Sheiber, Jeremy
Kolanthai, Elayaraja
Kumar, Udit
Drake, Christina
Seal, Sudipta
Parks, Griffith D.
author_sort Fox, Candace R.
collection PubMed
description There is intense interest in developing long-lasting, potent, and broad-spectrum antiviral disinfectants. Ceria nanoparticles (CNPs) can undergo surface redox reactions (Ce(3+) ↔ Ce(4+)) to generate ROS without requiring an external driving force. Here, we tested the mechanism behind our prior finding of potent inactivation of enveloped and non-enveloped RNA viruses by silver-modified CNPs, AgCNP1 and AgCNP2. Treatment of human respiratory viruses, coronavirus OC43 and parainfluenza virus type 5 (PIV5) with AgCNP1 and 2, respectively, prevented virus interactions with host cell receptors and resulted in virion aggregation. Rhinovirus 14 (RV14) mutants were selected to be resistant to inactivation by AgCNP2. Sequence analysis of the resistant virus genomes predicted two amino acid changes in surface-located residues D91V and F177L within capsid protein VP1. Consistent with the regenerative properties of CNPs, surface-applied AgCNP1 and 2 inactivated a wide range of structurally diverse viruses, including enveloped (OC43, SARS-CoV-2, and PIV5) and non-enveloped RNA viruses (RV14 and feline calicivirus; FCV). Remarkably, a single application of AgCNP1 and 2 potently inactivated up to four sequential rounds of virus challenge. Our results show broad-spectrum and long-lasting anti-viral activity of AgCNP nanoparticles, due to targeting of viral surface proteins to disrupt interactions with cellular receptors.
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spelling pubmed-103437172023-07-14 Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions Fox, Candace R. Kedarinath, Kritika Neal, Craig J. Sheiber, Jeremy Kolanthai, Elayaraja Kumar, Udit Drake, Christina Seal, Sudipta Parks, Griffith D. Molecules Article There is intense interest in developing long-lasting, potent, and broad-spectrum antiviral disinfectants. Ceria nanoparticles (CNPs) can undergo surface redox reactions (Ce(3+) ↔ Ce(4+)) to generate ROS without requiring an external driving force. Here, we tested the mechanism behind our prior finding of potent inactivation of enveloped and non-enveloped RNA viruses by silver-modified CNPs, AgCNP1 and AgCNP2. Treatment of human respiratory viruses, coronavirus OC43 and parainfluenza virus type 5 (PIV5) with AgCNP1 and 2, respectively, prevented virus interactions with host cell receptors and resulted in virion aggregation. Rhinovirus 14 (RV14) mutants were selected to be resistant to inactivation by AgCNP2. Sequence analysis of the resistant virus genomes predicted two amino acid changes in surface-located residues D91V and F177L within capsid protein VP1. Consistent with the regenerative properties of CNPs, surface-applied AgCNP1 and 2 inactivated a wide range of structurally diverse viruses, including enveloped (OC43, SARS-CoV-2, and PIV5) and non-enveloped RNA viruses (RV14 and feline calicivirus; FCV). Remarkably, a single application of AgCNP1 and 2 potently inactivated up to four sequential rounds of virus challenge. Our results show broad-spectrum and long-lasting anti-viral activity of AgCNP nanoparticles, due to targeting of viral surface proteins to disrupt interactions with cellular receptors. MDPI 2023-07-04 /pmc/articles/PMC10343717/ /pubmed/37446852 http://dx.doi.org/10.3390/molecules28135190 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
Fox, Candace R.
Kedarinath, Kritika
Neal, Craig J.
Sheiber, Jeremy
Kolanthai, Elayaraja
Kumar, Udit
Drake, Christina
Seal, Sudipta
Parks, Griffith D.
Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title_full Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title_fullStr Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title_full_unstemmed Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title_short Broad-Spectrum, Potent, and Durable Ceria Nanoparticles Inactivate RNA Virus Infectivity by Targeting Virion Surfaces and Disrupting Virus–Receptor Interactions
title_sort broad-spectrum, potent, and durable ceria nanoparticles inactivate rna virus infectivity by targeting virion surfaces and disrupting virus–receptor interactions
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343717/
https://www.ncbi.nlm.nih.gov/pubmed/37446852
http://dx.doi.org/10.3390/molecules28135190
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