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Published on: January 5, 2017
Farnesoid X receptor agonists attenuate colonic epithelial secretory function and prevent experimental diarrhoea in
Magdalena S Mroz1, Niamh Keating, Joseph B Ward
1Department of Molecular Medicine, RCSI Education and Research Centre, Beaumont Hospital, , Dublin, Ireland.
Objective:
Bile acids are important regulators of intestinal physiology, and the nuclear bile acid receptor, farnesoid X receptor (FXR), is emerging as a promising therapeutic target for several intestinal disorders. Here, we investigated a role for FXR in regulating intestinal fluid and electrolyte transport and the potential for FXR agonists in treating diarrhoeal diseases.
Design:
Electrogenic ion transport was measured as changes in short-circuit current across voltage-clamped T84 cell monolayers or mouse tissues in Ussing chambers. NHE3 activity was measured as BCECF fluorescence in Caco-2 cells. Protein expression was measured by immunoblotting and cell surface biotinylation. Antidiarrhoeal efficacy of GW4064 was assessed using two in vivo mouse models: the ovalbumin-induced diarrhoea model and cholera toxin (CTX)-induced intestinal fluid accumulation.
Results:
GW4064 (5 μmol/L; 24 h), a specific FXR agonist, induced nuclear translocation of the receptor in T84 cells and attenuated Cl(-) secretory responses to both Ca(2+) and cAMP-dependent agonists. GW4064 also prevented agonist-induced inhibition of NHE3 in Caco-2 cells. In mice, intraperitoneal administration of GW4064 (50 mg/mL) also inhibited Ca(2+) and cAMP-dependent secretory responses across ex vivo colonic tissues and prevented ovalbumin-induced diarrhoea and CTX-induced intestinal fluid accumulation in vivo. At the molecular level, FXR activation attenuated apical Cl(-) currents by inhibiting expression of cystic fibrosis transmembrane conductance regulator channels and inhibited basolateral Na(+)/K(+)-ATPase activity without altering expression of the protein.
Conclusions:
These data reveal a novel antisecretory role for the FXR in colonic epithelial cells and suggest that FXR agonists have excellent potential for development as a new class of antidiarrheal drugs.
Insights
Farnesoid X receptor (FXR) activation reduces intestinal fluid secretion by inhibiting chloride channels and Na+/K+-ATPase activity. This suggests FXR agonists are promising new treatments for diarrheal diseases.
Area of Science:
- Gastroenterology
- Molecular Pharmacology
- Physiology
Background:
- Bile acids regulate intestinal physiology.
- The farnesoid X receptor (FXR) is a key bile acid receptor.
- FXR is a potential therapeutic target for intestinal disorders.
Purpose of the Study:
- Investigate FXR's role in intestinal fluid and electrolyte transport.
- Evaluate FXR agonists for treating diarrheal diseases.
Main Methods:
- Measured electrogenic ion transport in T84 cell monolayers and mouse tissues using Ussing chambers.
- Assessed NHE3 activity in Caco-2 cells.
- Evaluated antidiarrheal efficacy of the FXR agonist GW4064 in mouse models of diarrhea.
Main Results:
- FXR activation by GW4064 attenuated chloride secretory responses and prevented inhibition of NHE3.
- GW4064 administration in mice inhibited secretory responses and prevented diarrhea.
- FXR activation reduced apical chloride currents and basolateral Na+/K+-ATPase activity.
Conclusions:
- FXR plays a novel antisecretory role in colonic epithelial cells.
- FXR agonists show significant potential as a new class of antidiarrheal drugs.
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