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A Soluble Tetrazolium-Based Reduction Assay to Evaluate the Effect of Antibodies on Candida tropicalis Biofilms
Published on: September 16, 2022
Antimicrobial coatings effectively inactivate multidrug-resistant Candidozyma auris on surfaces
Sabine Poelzl1, Eva Zarschenas1, Rozita Nokhbehzaeim1
1Diagnostic and Research Institute for Hygiene, Microbiology and Environmental Medicine, Medical University of Graz, Graz, Austria.
Abstract:
Candidozyma auris-formerly known as Candida auris-is an emerging multidrug-resistant fungus causing life-threatening outbreaks, particularly in healthcare settings. Its ability to contaminate hospital equipment, persist on certain surfaces and develop resistance to commonly used antifungal agents makes it a critical priority pathogen. While classical hygiene measures are essential, increasing resistance to disinfectants calls for alternative approaches. One promising strategy is the use of antimicrobial materials on frequently touched surfaces to minimize the survival rate of problematic microorganisms. As literature does not provide a lot of data regarding the survival of Candida genera on surfaces, the present study was undertaken to analyze the survival/elimination of C. auris on different common and specific surfaces. ISO 22196:2011 was used to generate an overview of the efficacy of these surfaces against DSMZ strains of C. auris and C. albicans, respectively. The findings indicate that C. albicans can be regarded as suitable model organism for C. auris. Three clinical C. auris isolates with different genetic characteristics and/or phylogeographic origins yielded similar results to the DSMZ strains, providing a clear indication of the antifungal efficacy of surfaces tested. While reference materials without antimicrobial additives showed no efficacy, a combination of zinc and copper achieved the required 3 log10 reduction after 24 h. Most effective against all fungal strains in two different types of tests was a layer of antimicrobial lacquer, which showed a significant decrease in fungal survival within 1 h. Thus, these surface modifications can be considered as effective tools for fighting C. auris in hygienically critical areas.
Insights
Candida auris, a multidrug-resistant fungus, poses a significant threat in healthcare. Antimicrobial surfaces, particularly those with zinc, copper, or antimicrobial lacquer, effectively reduce its survival on surfaces.
Area of Science:
- Mycology
- Infectious Diseases
- Materials Science
Background:
- Candida auris is a multidrug-resistant fungus causing outbreaks, especially in healthcare.
- Its persistence on surfaces and resistance to antifungals necessitate alternative control strategies.
- Antimicrobial materials offer a promising approach to reduce pathogen survival on surfaces.
Purpose of the Study:
- To evaluate the survival and elimination of Candida auris on various common and specialized surfaces.
- To assess the efficacy of antimicrobial surface modifications against C. auris.
- To determine if Candida albicans can serve as a suitable model organism for C. auris surface survival studies.
Main Methods:
- ISO 22196:2011 standard was employed to test surface efficacy.
- Tests were conducted using reference strains (DSMZ) of C. auris and C. albicans, alongside three clinical C. auris isolates.
- Surface materials included reference materials, zinc and copper combinations, and an antimicrobial lacquer.
Main Results:
- Candida albicans demonstrated suitability as a model organism for C. auris.
- Surfaces without antimicrobial additives showed no efficacy against C. auris.
- A combination of zinc and copper achieved a 3 log10 reduction of C. auris after 24 hours.
- Antimicrobial lacquer was most effective, significantly reducing fungal survival within 1 hour.
Conclusions:
- Antimicrobial surface modifications are effective tools for controlling Candida auris in critical healthcare environments.
- Zinc and copper combinations and antimicrobial lacquers show significant potential in reducing C. auris contamination.
- The study validates C. albicans as a reliable model for assessing C. auris surface survival.
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