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Experimental Infection with Listeria monocytogenes as a Model for Studying Host Interferon-γ Responses
Published on: November 16, 2016
Comparing Campylobacter jejuni to three other enteric pathogens in OligoMM12 mice reveals pathogen-specific host and
Mathias K-M Herzog1, Audrey Peters2, Nizar Shayya3
1Institute of Microbiology, Department of Biology, ETH Zurich, Zurich, Switzerland.
Abstract:
Campylobacter jejuni, non-typhoidal Salmonella spp., Listeria monocytogenes and enteropathogenic/enterohemorrhagic Escherichia coli (EPEC/EHEC) are leading causes of food-borne illness worldwide. Citrobacter rodentium has been used to model EPEC and EHEC infection in mice. The gut microbiome is well-known to affect gut colonization and host responses to many food-borne pathogens. Recent progress has established gnotobiotic mice as valuable models to study how microbiota affect the enteric infections by S. Typhimurium, C. rodentium and L. monocytogenes. However, for C. jejuni, we are still lacking a suitable gnotobiotic mouse model. Moreover, the limited comparability of data across laboratories is often negatively affected by variations between different research facilities or murine microbiotas. In this study, we applied the standardized gnotobiotic OligoMM12 microbiota mouse model and compared the infections in the same facility. We provide evidence of robust colonization and significant pathological changes in OligoMM12 mice following infection with these pathogens. Moreover, we offer insights into pathogen-specific host responses and metabolite signatures, highlighting the advantages of a standardized mouse model for direct comparisons of factors influencing the pathogenesis of major food-borne pathogens. Notably, we reveal for the first time that C. jejuni stably colonizes OligoMM12 mice, triggering inflammation. Additionally, our comparative approach successfully identifies pathogen-specific responses, including the detection of genes uniquely associated with C. jejuni infection in humans. These findings underscore the potential of the OligoMM12 model as a versatile tool for advancing our understanding of food-borne pathogen interactions.
Insights
A standardized gnotobiotic mouse model, OligoMM12, enables robust colonization and pathological changes in mice infected with food-borne pathogens like Campylobacter jejuni. This model offers insights into pathogen-specific host responses and metabolite signatures, advancing research on enteric infections.
Area of Science:
- Microbiology
- Immunology
- Gastroenterology
Background:
- Food-borne pathogens like Campylobacter jejuni, Salmonella spp., Listeria monocytogenes, and E. coli cause significant global illness.
- Gnotobiotic mouse models are crucial for studying gut microbiome influence on enteric pathogen infections.
- A standardized gnotobiotic model is needed for Campylobacter jejuni research due to limitations in current models.
Purpose of the Study:
- To evaluate the standardized gnotobiotic OligoMM12 microbiota mouse model for studying food-borne pathogen infections.
- To compare pathogen-specific host responses and metabolite signatures in a controlled experimental setting.
- To establish a reliable model for Campylobacter jejuni colonization and pathogenesis.
Main Methods:
- Application of the standardized gnotobiotic OligoMM12 microbiota mouse model.
- Infection of mice with key food-borne pathogens including Campylobacter jejuni.
- Comparative analysis of pathogen colonization, host responses, and metabolite profiles.
Main Results:
- OligoMM12 mice exhibited robust colonization and significant pathological changes upon infection with tested food-borne pathogens.
- Campylobacter jejuni was shown to stably colonize OligoMM12 mice, inducing inflammation.
- Pathogen-specific host responses and metabolite signatures were identified, including genes linked to human C. jejuni infections.
Conclusions:
- The standardized OligoMM12 gnotobiotic mouse model is effective for studying food-borne pathogen pathogenesis.
- This model facilitates direct comparisons of factors influencing enteric infections, overcoming inter-laboratory variability.
- The model provides novel insights into Campylobacter jejuni colonization and host interactions, aiding future research.
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