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Updated: Jul 10, 2025

Gastrointestinal Motility Monitor GIMM
Published on: December 1, 2010
RET Signaling Persists in the Adult Intestine and Stimulates Motility by Limiting PYY Release From Enteroendocrine
Amy Shepherd1, Laurence Feinstein2, Svetlana Sabel2
1Department of Pediatrics, Boston Children's Hospital and Harvard Medical School, Boston, Massachusetts.
Insights
RET signaling in the gut epithelium regulates gastrointestinal motility in male mice by limiting nutrient-dependent peptide release. This finding may explain Hirschsprung disease (HSCR) dysmotility and offers therapeutic targets.
Area of Science:
- Gastroenterology
- Developmental Biology
- Molecular Biology
Background:
- RET tyrosine kinase is crucial for enteric nervous system development, and its mutations cause Hirschsprung disease (HSCR).
- Postnatal RET function in gastrointestinal (GI) motility is not well understood, despite chronic issues in HSCR patients.
Purpose of the Study:
- To investigate the location of postnatal RET expression in the GI tract.
- To determine the role of RET in regulating GI motility in vivo.
Main Methods:
- Utilized RetCFP/+ mice and human data to identify RET-expressing cells.
- Employed genetic and pharmacologic methods to disrupt RET signaling in specific cell types (epithelium, enteric neurons).
Main Results:
- RET is expressed in adult intestinal epithelial cells, including enteroendocrine L-cells.
- Disrupting RET in the epithelium, not neurons, slowed GI motility in male mice.
- RET inhibition increased peptide YY (PYY) and GLP-1 release, which was rescued by PYY receptor blockade.
Conclusions:
- Postnatal RET signaling in L-cells limits nutrient-dependent peptide release, essential for normal GI motility in males.
- This mechanism may underlie HSCR-associated dysmotility, predominantly seen in males.
- Identified a potential therapeutic target for post-prandial GI dysfunction.
Background & Aims:
RET tyrosine kinase is necessary for enteric nervous system development. Loss-of-function RET mutations cause Hirschsprung disease (HSCR), in which infants are born with aganglionic bowel. Despite surgical correction, patients with HSCR often experience chronic defecatory dysfunction and enterocolitis, suggesting that RET is important after development. To test this hypothesis, we determined the location of postnatal RET and its significance in gastrointestinal (GI) motility.
Methods:
RetCFP/+ mice and human transcriptional profiling data were studied to identify the enteric neuronal and epithelial cells that express RET. To determine whether RET regulates gut motility in vivo, genetic, and pharmacologic approaches were used to disrupt RET in all RET-expressing cells, a subset of enteric neurons, or intestinal epithelial cells.
Results:
Distinct subsets of enteric neurons and enteroendocrine cells expressed RET in the adult intestine. RET disruption in the epithelium, rather than in enteric neurons, slowed GI motility selectively in male mice. RET kinase inhibition phenocopied this effect. Most RET+ epithelial cells were either enterochromaffin cells that release serotonin or L-cells that release peptide YY (PYY) and glucagon-like peptide 1 (GLP-1), both of which can alter motility. RET kinase inhibition exaggerated PYY and GLP-1 release in a nutrient-dependent manner without altering serotonin secretion in mice and human organoids. PYY receptor blockade rescued dysmotility in mice lacking epithelial RET.
Conclusions:
RET signaling normally limits nutrient-dependent peptide release from L-cells and this activity is necessary for normal intestinal motility in male mice. These effects could contribute to dysmotility in HSCR, which predominantly affects males, and uncovers a mechanism that could be targeted to treat post-prandial GI dysfunction.
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