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2021 Vol.14, Issue 1 Preview Page

Original Article

31 March 2021. pp. 23-40
Abstract
References
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Anderson, D. G. and Michels, H. T. (2008). Continuous Reduction Test Results for MRSA on Copper Alloy C110.
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Bang, J. H. (2020). We Can Get Out of The Virus Panic. Through Using Antimicrobial Copper. Steel&Metal News.
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Dykstra, M. (2020). How COVID-19 Kills. Frontiers in Public Health.
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Gião, M. S., Wilks, S. A., and Keevil, C. W. (2015). Influence of Copper Surfaces on Biofilm Formation by Legionella Pneumophila in Potable Water. Biometals: An International Journal on the Role of Metal Ions in Biology, Biochemistry, and Medicine. 28: 329-339. 10.1007/s10534-015-9835-y25686789
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Grass, G., Rensing, C., and Solioz, M. (2011). Metallic Copper as an Antimicrobial Surface. American Society for Microbiology Journals. 77(5): 1541-1547. 10.1128/AEM.02766-1021193661PMC3067274
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Kim, D. Y. (2015). Antimicrobial Copper Re-illuminated by MERS : Need to Increase Awareness of Antimicrobial Copper and Spread Application in Korea. Metal World. Vol. 115. Seoul. S&M Media.
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Li, G., Fan, Y., Lai, Y., Han, T., Li, Z., Zhou, P., Pan, P., Wang, W., Hu, D., Liu, X., Zhang, Q., and Wu, J. (2020). Coronavirus Infections and Immune Responses. Journal of Medical Virology. 92(4): 424-432. 10.1002/jmv.2568531981224PMC7166547
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Michels, H. T., Keevil, C. W., C. D. Salgado, and Schmidt, M. G.(2015). From Laboratory Research to a Clinical Trial: Copper Alloy Surfaces Kill Bacteria and Reduce Hospital-Acquired Infections. SAGE Journals. 9(1): 64-79. 10.1177/193758671559265026163568PMC4561453
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Noyce, J. O., Michels, H., and Keevil, C. W. (2006a). Potential Use of Copper Surfaces to Reduce Survival of Epidemic Meticillin-Resistant Staphylococcus Aureus in the Healthcare Environment. The Journal of Hospital Infection. 63(3): 289-297. 10.1016/j.jhin.2005.12.00816650507
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Noyce, J. O., Michels, H., and Keevil, C. W. (2006b). Use of Copper Cast Alloys to Control Escherichia Coli O-157 Cross- Contamination during Food Processing. Applied and Environmental Microbiology. 72(6): 4239-4244. 10.1128/AEM.02532-0516751537PMC1489622
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Noyce, J. O., Michels, H., and Keevil, C. W. (2007). Inactivation of Influenza A Virus on Copper Versus Stainless Steel Surfaces. Applied and Environmental Microbiology. 73(8): 2748-2750. 10.1128/AEM.01139-0617259354PMC1855605
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Ulrich, B. (1986). Risk Society, London: Sage Publications.
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Warnes, S. L. and Keevil, C. W. (2013). Inactivation of Norovirus on Dry Copper Alloy Surfaces. PloS One. 8: e75017. 10.1371/journal.pone.007501724040380PMC3767632
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Warnes, S. L., Caves, V., and Keevil, C. W. (2012a). Mechanism of Copper Surface Toxicity in Escherichia Coli O157. Environmental Microbiology. 14(7): 1730-1743. 10.1111/j.1462-2920.2011.02677.x22176893
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Warnes, S. L., Green, S. M., Michels, H. T., and Keevil, C. W. (2010). Biocidal Efficacy of Copper Alloys Against Pathogenic Enterococci Involves Degradation of Genomic and Plasmid DNAs. Applied and Environmental Microbiology. 76(16): 5390-5401. 10.1128/AEM.03050-0920581191PMC2918949
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Warnes, S. L., Highmore, C. J., and Keevil, C. W. (2012b). Horizontal Transfer of Antibiotic Resistance Genes on Abiotic Touch Surfaces : Implications for Public Health. mBio. 3: e00489. 10.1128/mBio.00489-1223188508PMC3509412
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Warnes, S. L., Summersgill, E. N., and Keevil, C. W. (2015a). Inactivation of Murine Norovirus on a Range of Copper Alloy Surfaces is Accompanied by Loss of Capsid Integrity. Applied and Environmental Microbiology. 81(3): 1085-1091. 10.1128/AEM.03280-1425452290PMC4292492
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Warnes., S. L., Little, Z. R. and Keevil, C. W. (2015b). Human Coronavirus 229E Remains Infectious on Common Touch Surface Materials. Centre for Biological Sciences, University of Southampton, United Kingdom. mBio. 6(6): e01697-15. 10.1128/mBio.01697-1526556276PMC4659470
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Weaver, L., Michels, H. T., and Keevil, C. W. (2008). Survival of Clostridium Difficile on Copper and Steel: Futuristic Options for Hospital Hygiene. The Journal of Hospital Infection. 68(2): 145-151. 10.1016/j.jhin.2007.11.01118207284
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Weaver, L., Michels, H. T., and Keevil, C. W. (2010a). Potential for Preventing Spread of Fungi in Air-conditioning Systems Constructed Using Copper Instead of Aluminium. Letters in Applied Microbiology. 50(1): 18-23. 10.1111/j.1472-765X.2009.02753.x19943884
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Weaver, L., Noyce, J. O., Michels, H. T., and Keevil, C. W. (2010b). Potential Action of Copper Surfaces on Meticillin-Resistant Staphylococcus Aureus. Journal of Applied Microbiology. 109(6): 2200-2205. 10.1111/j.1365-2672.2010.04852.x21040269

Korean References Translated from the English

1
김도연 (2015). ‘메르스’를 계기로 재조명되는 ‘항균동’ : 항균동(抗菌銅) 인식제고 통해 국내적용 확산 필요. Metal World. Vol. 115. 서울 : S&M미디어.
2
방정환 (2020). 바이러스 감염공포, ‘항균동(抗菌銅)’으로 벗어날 수 있어. 철강금속신문.
3
입법조사처 (2020). 코로나19(COVID-19) 대응 종합보고서. 서울: 국회.
Information
  • Publisher :Korean Society of Disaster and Security
  • Publisher(Ko) :한국방재안전학회
  • Journal Title :Journal of Korean Society of Disaster and Security
  • Journal Title(Ko) :한국방재안전학회 논문집
  • Volume : 14
  • No :1
  • Pages :23-40
  • Received Date : 2020-09-07
  • Revised Date : 2020-12-31
  • Accepted Date : 2021-01-29