Cargando…

Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics

Hydrolytic reactions taking place at the surface of a silicon nitride (Si(3)N(4)) bioceramic were found to induce instantaneous inactivation of Human herpesvirus 1 (HHV-1, also known as Herpes simplex virus 1 or HSV-1). Si(3)N(4) is a non-oxide ceramic compound with strong antibacterial and antivira...

Descripción completa

Detalles Bibliográficos
Autores principales: Pezzotti, Giuseppe, Ohgitani, Eriko, Ikegami, Saki, Shin-Ya, Masaharu, Adachi, Tetsuya, Yamamoto, Toshiro, Kanamura, Narisato, Marin, Elia, Zhu, Wenliang, Okuma, Kazu, Mazda, Osam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10454075/
https://www.ncbi.nlm.nih.gov/pubmed/37628838
http://dx.doi.org/10.3390/ijms241612657
_version_ 1785096099429613568
author Pezzotti, Giuseppe
Ohgitani, Eriko
Ikegami, Saki
Shin-Ya, Masaharu
Adachi, Tetsuya
Yamamoto, Toshiro
Kanamura, Narisato
Marin, Elia
Zhu, Wenliang
Okuma, Kazu
Mazda, Osam
author_facet Pezzotti, Giuseppe
Ohgitani, Eriko
Ikegami, Saki
Shin-Ya, Masaharu
Adachi, Tetsuya
Yamamoto, Toshiro
Kanamura, Narisato
Marin, Elia
Zhu, Wenliang
Okuma, Kazu
Mazda, Osam
author_sort Pezzotti, Giuseppe
collection PubMed
description Hydrolytic reactions taking place at the surface of a silicon nitride (Si(3)N(4)) bioceramic were found to induce instantaneous inactivation of Human herpesvirus 1 (HHV-1, also known as Herpes simplex virus 1 or HSV-1). Si(3)N(4) is a non-oxide ceramic compound with strong antibacterial and antiviral properties that has been proven safe for human cells. HSV-1 is a double-stranded DNA virus that infects a variety of host tissues through a lytic and latent cycle. Real-time reverse transcription (RT)-polymerase chain reaction (PCR) tests of HSV-1 DNA after instantaneous contact with Si(3)N(4) showed that ammonia and its nitrogen radical byproducts, produced upon Si(3)N(4) hydrolysis, directly reacted with viral proteins and fragmented the virus DNA, irreversibly damaging its structure. A comparison carried out upon testing HSV-1 against ZrO(2) particles under identical experimental conditions showed a significantly weaker (but not null) antiviral effect, which was attributed to oxygen radical influence. The results of this study extend the effectiveness of Si(3)N(4)’s antiviral properties beyond their previously proven efficacy against a large variety of single-stranded enveloped and non-enveloped RNA viruses. Possible applications include the development of antiviral creams or gels and oral rinses to exploit an extremely efficient, localized, and instantaneous viral reduction by means of a safe and more effective alternative to conventional antiviral creams. Upon incorporating a minor fraction of micrometric Si(3)N(4) particles into polymeric matrices, antiherpetic devices could be fabricated, which would effectively impede viral reactivation and enable high local effectiveness for extended periods of time.
format Online
Article
Text
id pubmed-10454075
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-104540752023-08-26 Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics Pezzotti, Giuseppe Ohgitani, Eriko Ikegami, Saki Shin-Ya, Masaharu Adachi, Tetsuya Yamamoto, Toshiro Kanamura, Narisato Marin, Elia Zhu, Wenliang Okuma, Kazu Mazda, Osam Int J Mol Sci Article Hydrolytic reactions taking place at the surface of a silicon nitride (Si(3)N(4)) bioceramic were found to induce instantaneous inactivation of Human herpesvirus 1 (HHV-1, also known as Herpes simplex virus 1 or HSV-1). Si(3)N(4) is a non-oxide ceramic compound with strong antibacterial and antiviral properties that has been proven safe for human cells. HSV-1 is a double-stranded DNA virus that infects a variety of host tissues through a lytic and latent cycle. Real-time reverse transcription (RT)-polymerase chain reaction (PCR) tests of HSV-1 DNA after instantaneous contact with Si(3)N(4) showed that ammonia and its nitrogen radical byproducts, produced upon Si(3)N(4) hydrolysis, directly reacted with viral proteins and fragmented the virus DNA, irreversibly damaging its structure. A comparison carried out upon testing HSV-1 against ZrO(2) particles under identical experimental conditions showed a significantly weaker (but not null) antiviral effect, which was attributed to oxygen radical influence. The results of this study extend the effectiveness of Si(3)N(4)’s antiviral properties beyond their previously proven efficacy against a large variety of single-stranded enveloped and non-enveloped RNA viruses. Possible applications include the development of antiviral creams or gels and oral rinses to exploit an extremely efficient, localized, and instantaneous viral reduction by means of a safe and more effective alternative to conventional antiviral creams. Upon incorporating a minor fraction of micrometric Si(3)N(4) particles into polymeric matrices, antiherpetic devices could be fabricated, which would effectively impede viral reactivation and enable high local effectiveness for extended periods of time. MDPI 2023-08-10 /pmc/articles/PMC10454075/ /pubmed/37628838 http://dx.doi.org/10.3390/ijms241612657 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
Pezzotti, Giuseppe
Ohgitani, Eriko
Ikegami, Saki
Shin-Ya, Masaharu
Adachi, Tetsuya
Yamamoto, Toshiro
Kanamura, Narisato
Marin, Elia
Zhu, Wenliang
Okuma, Kazu
Mazda, Osam
Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title_full Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title_fullStr Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title_full_unstemmed Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title_short Instantaneous Inactivation of Herpes Simplex Virus by Silicon Nitride Bioceramics
title_sort instantaneous inactivation of herpes simplex virus by silicon nitride bioceramics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10454075/
https://www.ncbi.nlm.nih.gov/pubmed/37628838
http://dx.doi.org/10.3390/ijms241612657
work_keys_str_mv AT pezzottigiuseppe instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT ohgitanieriko instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT ikegamisaki instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT shinyamasaharu instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT adachitetsuya instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT yamamototoshiro instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT kanamuranarisato instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT marinelia instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT zhuwenliang instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT okumakazu instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics
AT mazdaosam instantaneousinactivationofherpessimplexvirusbysiliconnitridebioceramics