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Updated: Aug 26, 2026

Whole Cell Electrophysiology of Primary Cultured Murine Enterochromaffin Cells
Published on: September 26, 2018
Enterochromaffin cells as a cellular integration hub for cooperative microbial signaling to modulate gut serotonin
Yang Xiao1, Tijs Louwies1, Ruben A T Mars2
1Department of Physiology and Biomedical Engineering, Mayo Clinic, Rochester, MN 55905.
Abstract:
The intestinal epithelium is exposed to diverse combinations of microbiota-derived compounds; however, the mechanisms by which the host integrates these signals remain poorly defined. Studying two highly abundant microbial metabolites, we identified the purine metabolite hypoxanthine as an effector metabolite that directly drives signaling and the short-chain fatty acid butyrate as a regulatory metabolite that conditions host responsiveness. Specifically, hypoxanthine activates the adenosine A1 receptor-TRPC4 axis in enterochromaffin (EC) cells, triggering calcium influx and serotonin release resulting in accelerated gastrointestinal transit locally and increased platelet activation systemically. In contrast, butyrate epigenetically upregulates specific G protein-coupled receptors and ion channels to enhance response to hypoxanthine and the neurotransmitters norepinephrine and dopamine. These findings define a cooperative signaling framework and highlight the role of EC cells as a distinct epithelial signaling hub that senses and integrates microbial metabolite signals to drive physiological responses. Our findings provide a mechanistic foundation for therapeutic strategies that leverage combinatorial microbial signaling.
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