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Inactivation of Spores and Vegetative Forms of by Chemical Biocides: Mechanisms of Biocidal Activity, Methods of Evaluation, and Environmental Aspects

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Publisher MDPI
Date 2022 Jan 21
PMID 35055571
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Abstract

infections (CDIs) are the most common cause of acquired diseases in hospitalized patients. Effective surface disinfection, focused on the inactivation of the spores of this pathogen, is a decisive factor in reducing the number of nosocomial cases of CDI infections. An efficient disinfection procedure is the result of both the properties of the biocidal agent used and the technology of its implementation as well as a reliable, experimental methodology for assessing the activity of the biocidal active substance based on laboratory models that adequately represent real clinical conditions. This study reviews the state of knowledge regarding the properties and biochemical basis of the action mechanisms of sporicidal substances, with emphasis on chlorine dioxide (ClO). Among the analyzed biocides, in addition to ClO, active chlorine, hydrogen peroxide, peracetic acid, and glutaraldehyde were characterized. Due to the relatively high sporicidal effectiveness and effective control of bacterial biofilm, as well as safety in a health and environmental context, the use of ClO is an attractive alternative in the control of nosocomial infections of CD etiology. In terms of the methods of assessing the biocidal effectiveness, suspension and carrier standards are discussed.

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References
1.
Richardson S, Plewa M, Wagner E, Schoeny R, DeMarini D . Occurrence, genotoxicity, and carcinogenicity of regulated and emerging disinfection by-products in drinking water: a review and roadmap for research. Mutat Res. 2007; 636(1-3):178-242. DOI: 10.1016/j.mrrev.2007.09.001. View

2.
Rogers J, Sabourin C, Choi Y, Richter W, Rudnicki D, Riggs K . Decontamination assessment of Bacillus anthracis, Bacillus subtilis, and Geobacillus stearothermophilus spores on indoor surfaces using a hydrogen peroxide gas generator. J Appl Microbiol. 2005; 99(4):739-48. DOI: 10.1111/j.1365-2672.2005.02686.x. View

3.
Barbut F, Menuet D, Verachten M, Girou E . Comparison of the efficacy of a hydrogen peroxide dry-mist disinfection system and sodium hypochlorite solution for eradication of Clostridium difficile spores. Infect Control Hosp Epidemiol. 2009; 30(6):507-14. DOI: 10.1086/597232. View

4.
Stewart D, Napolitano M, Bakhmutova-Albert E, Margerum D . Kinetics and mechanisms of chlorine dioxide oxidation of tryptophan. Inorg Chem. 2008; 47(5):1639-47. DOI: 10.1021/ic701761p. View

5.
Kierat W, Augustyn W, Koper P, Pawlyta M, Chrusciel A, Wyrwol B . The Use of UVC Irradiation to Sterilize Filtering Facepiece Masks Limiting Airborne Cross-Infection. Int J Environ Res Public Health. 2020; 17(20). PMC: 7600701. DOI: 10.3390/ijerph17207396. View