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Updated: Aug 5, 2025

Injections of Lipopolysaccharide into Mice to Mimic Entrance of Microbial-derived Products After Intestinal Barrier Breach
Published on: May 2, 2018
Dopamine receptor D2 confers colonization resistance via gut microbial metabolites
Samantha A Scott1,2, Jingjing Fu2,3, Pamela V Chang2,3,4,5
1Department of Microbiology, Cornell University, Ithaca, NY 14853.
Abstract:
The gut microbiome plays major roles in modulating host physiology. One such function is colonization resistance, or the ability of the microbial collective to protect the host against enteric pathogens1-3, including enterohemorrhagic Escherichia coli (EHEC) serotype O157:H7, an attaching and effacing (AE) food-borne pathogen that causes severe gastroenteritis, enterocolitis, bloody diarrhea, and acute renal failure (hemolytic uremic syndrome)4,5. Although gut microbes can provide colonization resistance by outcompeting some pathogens or modulating host defense provided by the gut barrier and intestinal immune cells, this phenomenon remains poorly understood. Emerging evidence suggests that small-molecule metabolites produced by the gut microbiota may mediate this process6. Here, we show that tryptophan (Trp)-derived metabolites produced by the gut bacteria protect the host against Citrobacter rodentium, a murine AE pathogen widely used as a model for EHEC infection7,8, by activation of the host neurotransmitter dopamine receptor D2 (DRD2) within the intestinal epithelium. We further find that these Trp metabolites act through DRD2 to decrease expression of a host actin regulatory protein involved in C. rodentium and EHEC attachment to the gut epithelium via formation of actin pedestals. Previously identified mechanisms of colonization resistance either directly affect the pathogen by competitive exclusion or indirectly by modulation of host defense mechanisms9,10, so our results delineate a noncanonical colonization resistance pathway against AE pathogens featuring an unconventional role for DRD2 outside the nervous system in controlling actin cytoskeletal organization within the gut epithelium. Our findings may inspire prophylactic and therapeutic approaches for improving gut health and treating gastrointestinal infections, which afflict millions globally.
Insights
Gut bacteria metabolites from tryptophan protect against enteric pathogens by activating dopamine receptor D2 (DRD2) in the gut. This noncanonical pathway enhances colonization resistance against attaching and effacing pathogens.
Area of Science:
- Microbiology
- Immunology
- Gastroenterology
Background:
- The gut microbiome is crucial for host physiology, including colonization resistance against enteric pathogens like EHEC.
- Mechanisms of colonization resistance, such as competitive exclusion and host defense modulation, are not fully understood.
- Gut microbial metabolites are emerging as key mediators of host-pathogen interactions.
Conclusions:
- Gut microbial Trp metabolites activate intestinal DRD2 to confer colonization resistance against AE pathogens.
- This pathway represents a novel mechanism of host defense, distinct from previously known colonization resistance strategies.
- Findings suggest potential prophylactic and therapeutic applications for gastrointestinal infections by targeting this gut-microbe-host interaction.
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