Abstract
We compared the effectiveness of glutaraldehyde, formaldehyde, hydrogen peroxide, peracetic acid, cupric ascorbate (plus a sublethal amount of hydrogen peroxide), sodium hypochlorite, and phenol to inactivate Bacillus subtilis spores under various conditions. Each chemical agent was distinctly affected by pH, storage time after activation, dilution, and temperature. Only three of the preparations (hypochlorite, peracetic acid, and cupric ascorbate) studied here inactivated more than 99.9% of the spore load after a 30-min incubation at 20 degrees C at concentrations generally used to decontaminate medical devices. Under similar conditions, glutaraldehyde inactivated approximately 90%, and hydrogen peroxide, formaldehyde, and phenol produced little killing of spores in suspension. By kinetic analysis at different temperatures, we calculated the rate of spore inactivation (k) and the activation energy of spore killing (delta E) for each chemical agent. Rates of spore inactivation had a similar delta E value of approximately 20 kcal/mol (ca.83.68 kJ/mol) for every substance tested. The variation among k values allowed a quantitative comparison of liquid germicidal agents.
MeSH Terms
Ascorbic Acid/pharmacology
Bacillus subtilis/drug effects
Disinfectants/pharmacology
Formaldehyde/pharmacology
Glutaral/pharmacology
Hydrogen Peroxide/pharmacology
Hydrogen-Ion Concentration
Peracetic Acid/pharmacology
Phenol
Phenols/pharmacology
Sodium Hypochlorite/pharmacology
Spores, Bacterial/drug effects
Temperature
Chemicals
Disinfectants
Phenols
Formaldehyde
Phenol
Hydrogen Peroxide
Sodium Hypochlorite
Peracetic Acid
Ascorbic Acid
Glutaral
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Sagripanti J L
Molecular Biology Branch, Food and Drug Administration, Rockville, Maryland 20857, USA.
Bonifacino A
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