Role of Antioxidant Enzymes in Bacterial Resistance to Organic Acids
- 1 May 2010
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 76 (9) , 2747-2753
- https://doi.org/10.1128/aem.02718-09
Abstract
Growth in aerobic environments has been shown to generate reactive oxygen species (ROS) and to cause oxidative stress in most organisms. Antioxidant enzymes (i.e., superoxide dismutases and hydroperoxidases) and DNA repair mechanisms provide protection against ROS. Acid stress has been shown to be associated with the induction of Mn superoxide dismutase (MnSOD) in Lactococcus lactis and Staphylococcus aureus . However, the relationship between acid stress and oxidative stress is not well understood. In the present study, we showed that mutations in the gene coding for MnSOD ( sodA ) increased the toxicity of lactic acid at pH 3.5 in Streptococcus thermophilus . The inclusion of the iron chelators 2,2′-dipyridyl (DIP), diethienetriamine-pentaacetic acid (DTPA), and O -phenanthroline (O-Phe) provided partial protection against 330 mM lactic acid at pH 3.5. The results suggested that acid stress triggers an iron-mediated oxidative stress that can be ameliorated by MnSOD and iron chelators. These findings were further validated in Escherichia coli strains lacking both MnSOD and iron SOD (FeSOD) but expressing a heterologous MnSOD from S. thermophilus . We also found that, in E. coli , FeSOD did not provide the same protection afforded by MnSOD and that hydroperoxidases are equally important in protecting the cells against acid stress. These findings may explain the ability of some microorganisms to survive better in acidified environments, as in acid foods, during fermentation and accumulation of lactic acid or during passage through the low pH of the stomach.Keywords
This publication has 53 references indexed in Scilit:
- Inactivation of VicK Affects Acid Production and Acid Survival of Streptococcus mutansJournal of Bacteriology, 2009
- Catalase Overexpression Reduces Lactic Acid-Induced Oxidative Stress in Saccharomyces cerevisiaeApplied and Environmental Microbiology, 2009
- Fermentation and Lactic Acid Addition Enhance Iron Bioavailability of MaizeJournal of Agricultural and Food Chemistry, 2007
- Expression of a Heterologous Manganese Superoxide Dismutase Gene in Intestinal Lactobacilli Provides Protection against Hydrogen Peroxide ToxicityApplied and Environmental Microbiology, 2004
- Stimulation of fibroblast proliferation by lactate‐mediated oxidantsWound Repair and Regeneration, 2004
- Degradation of Atrazine by Fenton's Reagent: Condition Optimization and Product QuantificationEnvironmental Science & Technology, 1995
- Response of hydroperoxidase and superoxide dismutase deficient mutants of Escherichia coli K-12 to oxidative stressCanadian Journal of Microbiology, 1988
- Oxygen utilization by Lactobacillus plantarumArchiv für Mikrobiologie, 1980
- Superoxide‐dependent production of hydroxyl radical catalyzed by iron—EDTA complexFEBS Letters, 1978
- A MEDIUM FOR THE CULTIVATION OF LACTOBACILLIJournal of Applied Bacteriology, 1960