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Published on: November 16, 2017
Inactivation of norovirus on dry copper alloy surfaces
Sarah L Warnes1, C William Keevil
1Centre for Biological Sciences, University of Southampton, Southampton, United Kingdom.
Abstract:
Noroviruses (family Caliciviridae) are the primary cause of viral gastroenteritis worldwide. The virus is highly infectious and touching contaminated surfaces can contribute to infection spread. Although the virus was identified over 40 years ago the lack of methods to assess infectivity has hampered the study of the human pathogen. Recently the murine virus, MNV-1, has successfully been used as a close surrogate. Copper alloys have previously been shown to be effective antimicrobial surfaces against a range of bacteria and fungi. We now report rapid inactivation of murine norovirus on alloys, containing over 60% copper, at room temperature but no reduction of infectivity on stainless steel dry surfaces in simulated wet fomite and dry touch contamination. The rate of inactivation was initially very rapid and proportional to copper content of alloy tested. Viral inactivation was not as rapid on brass as previously observed for bacteria but copper-nickel alloy was very effective. The use of chelators and quenchers of reactive oxygen species (ROS) determined that Cu(II) and especially Cu(I) ions are still the primary effectors of toxicity but quenching superoxide and hydroxyl radicals did not confer protection. This suggests Fenton generation of ROS is not important for the inactivation mechanism. One of the targets of copper toxicity was the viral genome and a reduced copy number of the gene for a viral encoded protein, VPg (viral-protein-genome-linked), which is essential for infectivity, was observed following contact with copper and brass dry surfaces. The use of antimicrobial surfaces containing copper in high risk closed environments such as cruise ships and care facilities could help to reduce the spread of this highly infectious and costly pathogen.
Insights
Copper alloys rapidly inactivate murine norovirus, a surrogate for human norovirus, on surfaces. This suggests copper surfaces could help reduce the spread of this highly infectious gastroenteritis pathogen in high-risk areas.
Area of Science:
- Microbiology
- Materials Science
- Infectious Diseases
Background:
- Noroviruses are a leading cause of viral gastroenteritis globally.
- The lack of infectivity assays has hindered norovirus research.
- Murine norovirus (MNV-1) serves as a surrogate for studying human norovirus.
Purpose of the Study:
- To investigate the efficacy of copper alloys in inactivating murine norovirus.
- To determine the mechanism of viral inactivation by copper surfaces.
- To assess the potential of copper alloys as antimicrobial surfaces for norovirus control.
Main Methods:
- Testing inactivation of MNV-1 on various copper alloys and stainless steel under different conditions (dry, wet fomite).
- Assessing viral inactivation rates and their correlation with copper content.
- Utilizing chelators and reactive oxygen species (ROS) quenchers to elucidate the inactivation mechanism.
- Analyzing viral genome integrity and copy number of the VPg gene.
Main Results:
- Rapid inactivation of MNV-1 observed on copper alloys (>60% copper) at room temperature.
- No significant reduction in infectivity on stainless steel surfaces.
- Inactivation rate was proportional to copper content; copper-nickel alloys were highly effective.
- Cu(I) and Cu(II) ions were identified as primary effectors, but ROS generation was not the main mechanism.
- Damage to the viral genome, specifically reduced VPg gene copy number, was observed.
Conclusions:
- Copper alloys demonstrate rapid antiviral activity against murine norovirus.
- Antimicrobial copper surfaces show promise for reducing norovirus transmission in healthcare and public settings.
- Targeting the viral genome, particularly the VPg gene, is a key aspect of copper-mediated inactivation.
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