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Interplay between manganese and iron in pneumococcal pathogenesis: role of the orphan response regulator RitR
Cheryl-Lynn Y Ong1, Adam J Potter, Claudia Trappetti
1School of Chemistry and Molecular Biosciences and Australian Infectious Diseases Research Centre, University of Queensland, Brisbane, Queensland, Australia.
Abstract:
Streptococcus pneumoniae (the pneumococcus) is a major human pathogen that is carried asymptomatically in the nasopharynx by up to 70% of the human population. Translocation of the bacteria into internal sites can cause a range of diseases, such as pneumonia, otitis media, meningitis, and bacteremia. This transition from nasopharynx to growth at systemic sites means that the pneumococcus needs to adjust to a variety of environmental conditions, including transition metal ion availability. Although it is an important nutrient, iron potentiates oxidative stress, and it is established that in S. pneumoniae, expression of iron transport systems and proteins that protect against oxidative stress are regulated by an orphan response regulator, RitR. In this study, we investigated the effect of iron and manganese ion availability on the growth of a ritR mutant. Deletion of ritR led to impaired growth of bacteria in high-iron medium, but this phenotype could be suppressed with the addition of manganese. Measurement of metal ion accumulation indicated that manganese prevents iron accumulation. Furthermore, the addition of manganese also led to a reduction in the amount of hydrogen peroxide produced by bacterial cells. Studies of virulence in a murine model of infection indicated that RitR was not essential for pneumococcal survival and suggested that derepression of iron uptake systems may enhance the survival of pneumococci in some niches.
Insights
The response regulator RitR controls iron uptake in Streptococcus pneumoniae. Manganese addition suppresses iron toxicity and oxidative stress, aiding bacterial growth.
Area of Science:
- Microbiology
- Pathogen Biology
- Bacterial Physiology
Background:
- Streptococcus pneumoniae is a major human pathogen causing pneumonia, meningitis, and bacteremia.
- The bacterium adapts to diverse environments, including varying metal ion availability.
- Iron is crucial but induces oxidative stress; RitR regulates iron transport and oxidative stress response.
Purpose of the Study:
- Investigate the impact of iron and manganese on the growth of a ritR mutant.
- Determine the role of manganese in mitigating iron-related stress in S. pneumoniae.
Main Methods:
- Culturing a ritR mutant in media with varying iron and manganese concentrations.
- Measuring metal ion accumulation within bacterial cells.
- Assessing hydrogen peroxide production.
- Evaluating bacterial virulence in a murine infection model.
Main Results:
- Deletion of ritR impaired bacterial growth in high-iron conditions.
- Manganese addition rescued the growth defect and prevented excessive iron accumulation.
- Manganese also reduced hydrogen peroxide production by bacterial cells.
- RitR is not essential for pneumococcal survival in a murine model.
Conclusions:
- RitR plays a role in managing iron homeostasis and oxidative stress in S. pneumoniae.
- Manganese can counteract iron toxicity and reduce oxidative stress, supporting bacterial growth.
- Deregulation of iron uptake may enhance pneumococcal survival in specific host niches.
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