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Humanized Mouse Model to Study Bacterial Infections Targeting the Microvasculature
Published on: April 1, 2014
The Phosphocarrier Protein HPr Contributes to Meningococcal Survival during Infection
Ana Antunes1, Meriem Derkaoui2, Aude Terrade1
1Institut Pasteur, Unité des Infections Bactériennes Invasives, Paris, France, 75724 Paris Cedex 15, France.
Abstract:
Neisseria meningitidis is an exclusively human pathogen frequently carried asymptomatically in the nasopharynx but it can also provoke invasive infections such as meningitis and septicemia. N. meningitidis uses a limited range of carbon sources during infection, such as glucose, that is usually transported into bacteria via the phosphoenolpyruvate (PEP):sugar phosphotransferase system (PTS), in which the phosphocarrier protein HPr (encoded by the ptsH gene) plays a central role. Although N. meningitidis possesses an incomplete PTS, HPr was found to be required for its virulence. We explored the role of HPr using bioluminescent wild-type and ΔptsH strains in experimental infection in transgenic mice expressing the human transferrin. The wild-type MC58 strain was recovered at higher levels from the peritoneal cavity and particularly from blood compared to the ΔptsH strain. The ΔptsH strain provoked lower levels of septicemia in mice and was more susceptible to complement-mediated killing than the wild-type strain. We tested whether meningococcal structures impacted complement resistance and observed that only the capsule level was decreased in the ΔptsH mutant. We therefore compared the transcriptomic profiles of wild-type and ΔptsH strains and identified 49 differentially expressed genes. The HPr regulon contains mainly hypothetical proteins (43%) and several membrane-associated proteins that could play a role during host interaction. Some other genes of the HPr regulon are involved in stress response. Indeed, the ΔptsH strain showed increased susceptibility to environmental stress conditions. Our data suggest that HPr plays a pleiotropic role in host-bacteria interactions most likely through the innate immune response that may be responsible for the enhanced clearance of the ΔptsH strain from blood.
Insights
Phosphoenolpyruvate (PEP):sugar phosphotransferase system (PTS) protein HPr is crucial for Neisseria meningitidis virulence. Deletion of ptsH impairs bacterial survival, reduces septicemia, and increases susceptibility to host immune responses.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacterial Pathogenesis
Background:
- Neisseria meningitidis is a human pathogen causing meningitis and septicemia.
- The phosphoenolpyruvate (PEP):sugar phosphotransferase system (PTS) is vital for nutrient transport in bacteria.
- The phosphocarrier protein HPr, encoded by ptsH, is essential for N. meningitidis virulence despite an incomplete PTS.
Purpose of the Study:
- To investigate the role of HPr in N. meningitidis virulence and host-pathogen interactions.
- To elucidate the mechanisms by which HPr influences bacterial survival and immune evasion.
Main Methods:
- Utilized bioluminescent wild-type and ΔptsH N. meningitidis strains in a murine infection model.
- Assessed bacterial recovery from various body sites and survival rates.
- Evaluated susceptibility to complement-mediated killing.
- Analyzed transcriptomic profiles to identify differentially expressed genes.
Main Results:
- The ΔptsH mutant showed reduced recovery from blood and peritoneal cavity compared to wild-type.
- ΔptsH strains exhibited lower septicemia levels and increased susceptibility to complement killing.
- Capsule levels were decreased in the ΔptsH mutant.
- Transcriptomic analysis revealed 49 differentially expressed genes, including those involved in stress response and host interaction.
Conclusions:
- HPr plays a pleiotropic role in N. meningitidis virulence, impacting bacterial survival and immune evasion.
- HPr is likely involved in regulating capsule expression and stress response.
- The innate immune response, particularly complement-mediated killing, contributes to the clearance of ΔptsH mutants from the host.
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