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Published on: January 27, 2021
Methionine sulfoxide reductases are essential for virulence of Salmonella typhimurium
Luisa A Denkel1, Sarah A Horst, Syed Fazle Rouf
1Department of Medical Microbiology and Hospital Epidemiology, Medical School Hannover, Hannover, Germany.
Abstract:
Production of reactive oxygen species represents a fundamental innate defense against microbes in a diversity of host organisms. Oxidative stress, amongst others, converts peptidyl and free methionine to a mixture of methionine-S- (Met-S-SO) and methionine-R-sulfoxides (Met-R-SO). To cope with such oxidative damage, methionine sulfoxide reductases MsrA and MsrB are known to reduce MetSOs, the former being specific for the S-form and the latter being specific for the R-form. However, at present the role of methionine sulfoxide reductases in the pathogenesis of intracellular bacterial pathogens has not been fully detailed. Here we show that deletion of msrA in the facultative intracellular pathogen Salmonella (S.) enterica serovar Typhimurium increased susceptibility to exogenous H(2)O(2), and reduced bacterial replication inside activated macrophages, and in mice. In contrast, a ΔmsrB mutant showed the wild type phenotype. Recombinant MsrA was active against free and peptidyl Met-S-SO, whereas recombinant MsrB was only weakly active and specific for peptidyl Met-R-SO. This raised the question of whether an additional Met-R-SO reductase could play a role in the oxidative stress response of S. Typhimurium. MsrC is a methionine sulfoxide reductase previously shown to be specific for free Met-R-SO in Escherichia (E.) coli. We tested a ΔmsrC single mutant and a ΔmsrBΔmsrC double mutant under various stress conditions, and found that MsrC is essential for survival of S. Typhimurium following exposure to H(2)O(2,) as well as for growth in macrophages, and in mice. Hence, this study demonstrates that all three methionine sulfoxide reductases, MsrA, MsrB and MsrC, facilitate growth of a canonical intracellular pathogen during infection. Interestingly MsrC is specific for the repair of free methionine sulfoxide, pointing to an important role of this pathway in the oxidative stress response of Salmonella Typhimurium.
Insights
Salmonella Typhimurium uses methionine sulfoxide reductases (MsrA, MsrB, and MsrC) to repair oxidative damage from reactive oxygen species. All three Msr enzymes are crucial for bacterial survival and replication during infection.
Area of Science:
- Microbiology
- Molecular Biology
- Pathogenesis
Background:
- Reactive oxygen species (ROS) are key components of innate immunity, causing oxidative damage to microbial components.
- Oxidative stress converts methionine to methionine sulfoxides (MetSOs).
- Methionine sulfoxide reductases (MsrA and MsrB) are known to repair MetSOs, but their role in intracellular bacterial pathogens is not fully understood.
Purpose of the Study:
- To investigate the role of methionine sulfoxide reductases (MsrA, MsrB, and MsrC) in the oxidative stress response and pathogenesis of Salmonella Typhimurium.
- To determine the specificities and functions of MsrA, MsrB, and MsrC in repairing different forms of methionine sulfoxides.
Main Methods:
- Construction and characterization of Salmonella Typhimurium deletion mutants (ΔmsrA, ΔmsrB, ΔmsrC, ΔmsrBΔmsrC).
- Assessment of bacterial susceptibility to hydrogen peroxide (H2O2) in vitro.
- Evaluation of bacterial replication within activated macrophages and in vivo mouse models.
Main Results:
- Deletion of msrA increased susceptibility to H2O2 and reduced bacterial replication in macrophages and mice.
- MsrC is essential for Salmonella Typhimurium survival upon exposure to H2O2 and for growth in macrophages and mice.
- MsrC specifically repairs free methionine sulfoxide, highlighting its unique role in the oxidative stress response.
Conclusions:
- All three methionine sulfoxide reductases (MsrA, MsrB, and MsrC) contribute to the growth and survival of Salmonella Typhimurium during infection.
- MsrC plays a critical role in repairing free methionine sulfoxide, an important pathway for Salmonella Typhimurium's oxidative stress response.
- Understanding these repair mechanisms provides insights into bacterial pathogenesis and potential therapeutic targets.
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