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Updated: Apr 25, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Reduction of hydrogen peroxide accumulation and toxicity by a catalase from Mycoplasma iowae
Rachel E Pritchard1, Alexandre J Prassinos1, John D Osborne2
1Department of Microbiology, Miami University, Oxford, Ohio, United States of America.
Abstract:
Mycoplasma iowae is a well-established avian pathogen that can infect and damage many sites throughout the body. One potential mediator of cellular damage by mycoplasmas is the production of H2O2 via a glycerol catabolic pathway whose genes are widespread amongst many mycoplasma species. Previous sequencing of M. iowae serovar I strain 695 revealed the presence of not only genes for H2O2 production through glycerol catabolism but also the first documented mycoplasma gene for catalase, which degrades H2O2. To test the activity of M. iowae catalase in degrading H2O2, we studied catalase activity and H2O2 accumulation by both M. iowae serovar K strain DK-CPA, whose genome we sequenced, and strains of the H2O2-producing species Mycoplasma gallisepticum engineered to produce M. iowae catalase by transformation with the M. iowae putative catalase gene, katE. H2O2-mediated virulence by M. iowae serovar K and catalase-producing M. gallisepticum transformants were also analyzed using a Caenorhabditis elegans toxicity assay, which has never previously been used in conjunction with mycoplasmas. We found that M. iowae katE encodes an active catalase that, when expressed in M. gallisepticum, reduces both the amount of H2O2 produced and the amount of damage to C. elegans in the presence of glycerol. Therefore, the correlation between the presence of glycerol catabolism genes and the use of H2O2 as a virulence factor by mycoplasmas might not be absolute.
Insights
Mycoplasma iowae produces hydrogen peroxide (H2O2) but also has a catalase gene. This catalase enzyme, when expressed in other mycoplasmas, reduces H2O2 and virulence, challenging previous assumptions about H2O2 as a universal virulence factor.
Area of Science:
- Microbiology
- Molecular Biology
- Avian Pathology
Background:
- Mycoplasma iowae is an avian pathogen implicated in cellular damage.
- Mycoplasmas can produce hydrogen peroxide (H2O2) via glycerol catabolism, a potential virulence factor.
- M. iowae possesses genes for both H2O2 production and catalase, an H2O2-degrading enzyme.
Purpose of the Study:
- To investigate the activity of M. iowae catalase in degrading H2O2.
- To assess the role of H2O2 in M. iowae virulence.
- To evaluate the function of M. iowae catalase when expressed in other species.
Main Methods:
- Sequenced the genome of M. iowae serovar K strain DK-CPA.
- Studied catalase activity and H2O2 accumulation in M. iowae and engineered Mycoplasma gallisepticum.
- Utilized a Caenorhabditis elegans toxicity assay to analyze H2O2-mediated virulence.
Main Results:
- M. iowae katE gene encodes an active catalase.
- Expression of M. iowae catalase in M. gallisepticum reduced H2O2 production.
- Catalase expression decreased H2O2-mediated damage to C. elegans in the presence of glycerol.
Conclusions:
- M. iowae catalase actively degrades H2O2.
- The presence of glycerol catabolism genes does not definitively correlate with H2O2 virulence in all mycoplasmas.
- Catalase activity can mitigate H2O2-associated pathogenicity.
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