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Fluorescence-mediated Tomography for the Detection and Quantification of Macrophage-related Murine Intestinal Inflammation
Published on: December 15, 2017
Infection-Induced Intestinal Dysbiosis Is Mediated by Macrophage Activation and Nitrate Production
Shuai Wang1,2, Ayah El-Fahmawi1, David A Christian1
1Department of Pathobiology, School of Veterinary Medicine, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
Abstract:
Oral infection of C57BL/6J mice with Toxoplasma gondii results in a marked bacterial dysbiosis and the development of severe pathology in the distal small intestine that is dependent on CD4+ T cells and interferon gamma (IFN-γ). This dysbiosis and bacterial translocation contribute to the development of ileal pathology, but the factors that support the bloom of bacterial pathobionts are unclear. The use of microbial community profiling and shotgun metagenomics revealed that Toxoplasma infection induces a dysbiosis dominated by Enterobacteriaceae and an increased potential for nitrate respiration. In vivo experiments using bacterial metabolic mutants revealed that during this infection, host-derived nitrate supports the expansion of Enterobacteriaceae in the ileum via nitrate respiration. Additional experiments with infected mice indicate that the IFN-γ/STAT1/iNOS axis, while essential for parasite control, also supplies a pool of nitrate that serves as a source for anaerobic respiration and supports overgrowth of Enterobacteriaceae Together, these data reveal a trade-off in intestinal immunity after oral infection of C57BL/6J mice with T. gondii, in which inducible nitric oxide synthase (iNOS) is required for parasite control, while this host enzyme is responsible for specific modification of the composition of the microbiome that contributes to pathology.IMPORTANCEToxoplasma gondii is a protozoan parasite and a leading cause of foodborne illness. Infection is initiated when the parasite invades the intestinal epithelium, and in many host species, this leads to intense inflammation and a dramatic disruption of the normal microbial ecosystem that resides in the healthy gut (the so-called microbiome). One characteristic change in the microbiome during infection with Toxoplasma-as well as numerous other pathogens-is the overgrowth of Escherichia coli or similar bacteria and a breakdown of commensal containment leading to seeding of peripheral organs with gut bacteria and subsequent sepsis. Our findings provide one clear explanation for how this process is regulated, thereby improving our understanding of the relationship between parasite infection, inflammation, and disease. Furthermore, our results could serve as the basis for the development of novel therapeutics to reduce the potential for harmful bacteria to bloom in the gut during infection.
Insights
Toxoplasma gondii infection causes gut dysbiosis, promoting Enterobacteriaceae overgrowth. Host-derived nitrate, supplied by the IFN-γ/STAT1/iNOS axis, fuels this bacterial bloom, contributing to ileal pathology and highlighting a critical trade-off in immune response.
Area of Science:
- Immunology
- Microbiology
- Parasitology
Background:
- Oral infection with Toxoplasma gondii causes severe ileal pathology and bacterial dysbiosis in mice.
- This pathology is CD4+ T cell and IFN-γ dependent, but the factors driving bacterial pathobiont blooms remain unclear.
Purpose of the Study:
- To elucidate the mechanisms by which Toxoplasma gondii infection alters the gut microbiome and contributes to ileal pathology.
- To identify host-derived factors supporting the expansion of specific bacterial pathobionts during infection.
Main Methods:
- Microbial community profiling and shotgun metagenomics were used to analyze gut microbiota composition.
- In vivo experiments with bacterial metabolic mutants and infected mice were conducted to assess bacterial respiration and host-nitrate utilization.
Main Results:
- Toxoplasma infection induced dysbiosis characterized by Enterobacteriaceae expansion and increased nitrate respiration potential.
- Host-derived nitrate, supplied by the IFN-γ/STAT1/iNOS axis, was found to support Enterobacteriaceae growth in the ileum.
- Inducible nitric oxide synthase (iNOS) plays a dual role: essential for parasite control and promoting Enterobacteriaceae overgrowth via nitrate production.
Conclusions:
- Toxoplasma gondii infection disrupts the gut microbiome, favoring Enterobacteriaceae through host-derived nitrate.
- The IFN-γ/STAT1/iNOS pathway, crucial for parasite control, paradoxically supplies nitrate that fuels pathobiont expansion and ileal pathology.
- These findings reveal a critical immune-mediated trade-off that exacerbates disease and offer potential therapeutic targets.
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