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Evaluation of the Effectiveness of Various Antimicrobial Surfaces as a Strategy to Combat the Spread of Infections in Healthcare Facilities

https://doi.org/10.31631/20733046202625492101

Abstract

Relevance. Healthcare-associated infections (HAIs) remain a significant threat to patients and healthcare systems, with the contact transmission route–accounting for up to 60–70 % of all HAIs–being the predominant mode of spread. Objective. To evaluate the effectiveness of antimicrobial coatings developed by the FGBU “A.N. Frumkin Institute of Physical Chemistry and Electrochemistry” of the Russian Academy of Sciences in a hospital setting. Materials and Methods. A clinical study was conducted in an intensive care unit over a 5-month period to assess the efficacy of four types of antimicrobial coatings: stainless steel (C), smooth copper (M), lasertextured copper (CuT), and CuO/TiO₂ composite coating (A) on 24 high-touch surfaces. A total of 1440 surface swabs were analyzed using cultural methods and MALDI-TOF mass spectrometry. Results and Discussion. Laser-textured copper (CuT) demonstrated the highest overall antimicrobial efficacy: bacterial contamination levels were 26.8 times lower than on stainless steel surfaces, and the frequency of Staphylococcus aureus isolation was 43 times lower. The CuO/TiO₂ composite, despite exhibiting higher overall bacterial load (2.15 times higher than CuT), showed the lowest frequency of S. aureus detection (1.7 %). All experimental coatings consistently reduced microbial burden compared to control surfaces without requiring changes to routine disinfection protocols. The use of self-adhesive copper foils enables easy installation, durability, and cost-effectiveness. Conclusion. This study confirms that copper-based coatings – particularly laser-textured copper and the CuO/TiO₂ composite—are effective barriers that significantly reduce bacterial contamination on high-touch surfaces in hospital settings, where healthcare workers’ hands remain the primary vector for HAI transmission. These passive antimicrobial surfaces do not replace, but significantly enhance, conventional infection control measures, contributing to a multi-layered strategy for HAI prevention in real-world clinical environments.

About the Authors

M. Yu. Chernukha
Federal State Budgetary Institution "National Research Centre for Epidemiology and Microbiology named after Honorary Academician N. F. Gamaleya" of the Ministry of Health of the Russian Federation; Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Marina Yu. Chernukha — Dr. Sci. (Med.), Head of the Laboratory of Molecular Epidemiology of Nosocomial Infections

Tel.: +7 (499) 193-55-94

18 Gamaleya St., Moscow, 123098

Moscow



L. R. Avetisyan
Federal State Budgetary Institution "National Research Centre for Epidemiology and Microbiology named after Honorary Academician N. F. Gamaleya" of the Ministry of Health of the Russian Federation; Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Lusine R. Avetisyan — Dr. Sci. (Med.), Head of the Laboratory of Epidemiology of Opportunistic Infections, Leading Researcher of the Laboratory of Molecular Epidemiology of Nosocomial Infections

tel.: +7 (499) 193-55-94

Moscow



E. A. Domblides
Federal State Budgetary Institution "National Research Centre for Epidemiology and Microbiology named after Honorary Academician N. F. Gamaleya" of the Ministry of Health of the Russian Federation
Russian Federation

Edward A. Domblides — Junior Researcher, Laboratory of Molecular Epidemiology of Nosocomial Infections

tel.: +7 (499) 193-55-94

Moscow



K. A. Emelyanenko
Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Kirill A. Emelyanenko — PhD in Physics and Mathematics, Leading Researcher, Laboratory of Surface Forces

Moscow



A. V. Buglak
Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Andrey V. Buglak — PhD in Medicine, Researcher, Laboratory of Surface Forces

tel.: +7 (495) 955-46-25

Moscow



A. M. Emelyanenko
Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Alexandre M. Emelyanenko — Dr. Sci. in Physics and Mathematics, Corresponding Member of RAS, Leading Researcher, Laboratory of Surface Forces

tel.: +7 (495) 955-46-25

Moscow



L. B. Boinovich
Federal State Budgetary Institution of Science "A.N. Frumkin Institute of Physical Chemistry and Electrochemistry" of the Russian Academy of Sciences
Russian Federation

Ludmila B. Boinovich — Dr. Sci. in Physics and Mathematics, Academician of RAS, Leading Researcher, Laboratory of Surface Forces

tel.: +7 (495) 955-46-25

Moscow



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Review

For citations:


Chernukha M.Yu., Avetisyan L.R., Domblides E.A., Emelyanenko K.A., Buglak A.V., Emelyanenko A.M., Boinovich L.B. Evaluation of the Effectiveness of Various Antimicrobial Surfaces as a Strategy to Combat the Spread of Infections in Healthcare Facilities. Epidemiology and Vaccinal Prevention. 2026;25(4):92-101. (In Russ.) https://doi.org/10.31631/20733046202625492101

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ISSN 2073-3046 (Print)
ISSN 2619-0494 (Online)