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Published on: February 24, 2018
katGI and katGII encode two different catalases-peroxidases in Mycobacterium fortuitum
M C Menéndez1, J A Ainsa, C Martín
1Departamento Medicina Preventiva, Facultad de Medicina, Universidad Autónoma de Madrid, Spain.
Abstract:
It has been suggested that catalase-peroxidase plays an important role in several aspects of mycobacterial metabolism and is a virulence factor in the main pathogenic mycobacteria. In this investigation, we studied genes encoding for this protein in the fast-growing opportunistic pathogen Mycobacterium fortuitum. Nucleotide sequences of two different catalase-peroxidase genes (katGI and katGII) of M. fortuitum are described. They show only 64% homology at the nucleotide level and 55% identity at the amino acid level, and they are more similar to catalases-peroxidases from different bacteria, including mycobacteria, than to each other. Both proteins were found to be expressed in actively growing M. fortuitum, and both could also be expressed when transformed into Escherichia coli and M. aurum. We detected the presence of a copy of IS6100 in the neighboring region of a katG gene in the M. fortuitum strain in which this element was identified (strain FC1). The influence of each katG gene on isoniazid (isonicotinic acid hydrazide; INH) susceptibility of mycobacteria was checked by using the INH-sensitive M. aurum as the host. Resistance to INH was induced when katGI was transformed into INH-sensitive M. aurum, suggesting that this enzyme contributes to the natural resistance of M. fortuitum to the drug. This is the first report showing two different genes encoding same enzyme activity which are actively expressed within the same mycobacterial strain.
Insights
Mycobacterium fortuitum possesses two distinct catalase-peroxidase genes, katGI and katGII. KatGI confers isoniazid resistance, highlighting its role in drug resistance mechanisms of this opportunistic pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Catalase-peroxidase is crucial for mycobacterial metabolism and acts as a virulence factor.
- The opportunistic pathogen Mycobacterium fortuitum is a focus for studying these enzymes.
Purpose of the Study:
- To investigate the genes encoding catalase-peroxidase in Mycobacterium fortuitum.
- To determine the expression and function of these genes, particularly their role in isoniazid susceptibility.
Main Methods:
- Sequencing and analysis of two distinct catalase-peroxidase genes (katGI and katGII) in M. fortuitum.
- Expression analysis in M. fortuitum, Escherichia coli, and Mycobacterium aurum.
- Assessing the impact of katG genes on isoniazid susceptibility in M. aurum.
Main Results:
- Two unique catalase-peroxidase genes, katGI and katGII, were identified in M. fortuitum with low sequence homology.
- Both genes were expressed in actively growing M. fortuitum and could be expressed in heterologous hosts.
- Transformation of katGI into isoniazid-sensitive M. aurum induced resistance, indicating its role in drug resistance.
Conclusions:
- Mycobacterium fortuitum harbors two distinct, expressed catalase-peroxidase genes.
- The katGI gene contributes to isoniazid resistance in M. fortuitum.
- This study is the first to report two different genes encoding the same enzyme activity within a single mycobacterial strain.
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