Osmolarity disruption |
Acids; acetic acid, chlorine, citric acid |
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Bases; ammonia, sodium bicarbonate |
Alcohols; isopropanol, ethanol |
Quaternary ammonia; Alkyldimethylbenzylammonium chloride, benzalkonium chloride, benzethonium chloride, dialkyldimethylammonium chloride
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Oxidation |
Halogens; iodine, chlorine, fluorine |
Creates reactive‐oxygen species which disrupt chemical bonds on DNA, RNA, proteins, fatty acids
Immediate effect
Broad targeting
Reactivity reduces persistence
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Hydrogen peroxide |
Sodium hypochlorite |
Ozone |
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Coagulation |
Alcohols and phenols |
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Aldehydes |
Ammonia compounds |
Halophenol; chloroxylenol |
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Detergents and surfactants |
Detergents; sodium laureth sulfate, ammonium lauryl sulfate, amphoteric sodium deoxycholate, bile salts, Tween, and Triton
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Disrupts lipids, and may lyse cells, via hydrophobic interactions
Can decrease cell metabolism
Disrupts attachment to surface
Cationic detergents disrupt lipopolysaccharide and peptidoglycan
Anionic detergents disrupt lipopolysaccharide
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Disinfection capacity diminished at temperatures <27°C
Insufficient detergent activation can stimulate bacterial metabolism
Associated with irritation and endocrine disruption of animal cells
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Enzyme targeting |
Triclosan |
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Persistence in animal tissues, water, soil, and dust increases human exposure risk and potential for antimicrobial resistance
Endocrine disruption of animal cells
Suppresses immune cell response in some immunological disorders
Not been shown to reduce disease transmission
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Triclocarban |
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Microbial‐based products |
Containing microbial byproducts (enzymes) |
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Shorter shelf‐life than most commercial cleaning products
Limited by enzyme specificity for target, temperature range
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Containing microorganisms |
May degrade organic material
Successfully incorporated into waste water treatment systems
Promising in vitro work but in situ experimental design challenges preclude assessment of efficacy of surface cleaners
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Metals |
Copper |
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Titanium dioxide |
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