Efficacy of UV-C 254 nm Light and a Sporicidal Surface Disinfectant in Inactivating Spores from Clostridioides

Khald Blau1, Claudia Gallert1

  • 1Department of Microbiology-Biotechnology, Faculty of Technology, University of Applied Sciences Emden/Leer, 26723 Emden, Germany.

PubMed

Insights

Ultraviolet-C (UV-C) light effectively inactivates Clostridioides difficile spores on moist surfaces and in liquids. This study shows UV-C light and sporicidal disinfectants significantly reduce C. difficile contamination in healthcare settings.

Area of Science:

  • Microbiology
  • Environmental Science
  • Infection Control

Background:

  • Clostridioides difficile spores are a major cause of healthcare-associated infections.
  • Spores exhibit remarkable environmental persistence, posing a significant disinfection challenge.

Purpose of the Study:

  • To assess the efficacy of UV-C 254 nm light in inactivating C. difficile spores.
  • To evaluate the effectiveness of a sporicidal disinfectant on various surfaces.
  • To determine the impact of spore density and surface moisture on inactivation efficacy.

Main Methods:

  • C. difficile spores (various ribotypes) were inoculated on brain heart infusion (BHI) agar or in phosphate-buffered saline (PBS) at densities of 10^5-10^7 CFUs/mL.
  • Samples were exposed to UV-C light for up to 30 minutes.
  • Sporicidal surface wipes were tested on Formica, stainless steel, and plastic surfaces with spore suspensions (10^3-10^5 CFUs).

Main Results:

  • Complete log10 CFU reduction of C. difficile spores was achieved on BHI agar and in PBS after 20 minutes of UV-C exposure (2208 mJ/cm^2).
  • Sporicidal wipes reduced C. difficile spores on Formica, stainless steel, and plastic surfaces by 2.03-3.53 log10.
  • Moist surfaces and liquids enhanced UV-C efficacy.

Conclusions:

  • UV-C light is a potent sporicidal agent against C. difficile, particularly effective on moist surfaces and in liquids.
  • Sporicidal disinfectants provide significant spore reduction on common healthcare surfaces.
  • These methods offer promising strategies for C. difficile decontamination in healthcare environments and water systems.

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