UDP-glucose modulates gastric function through P2Y14 receptor-dependent and -independent mechanisms

Anna K Bassil1, Sophie Bourdu, Karen A Townson

  • 1Department of Gastrointestinal Research, Neurology and Gastrointestinal Centre of Excellence for Drug Discovery, Harlow, UK.

Insights

The P2Y14 receptor influences stomach muscle contractions in rodents. UDP-glucose delays gastric emptying, but this effect is independent of the P2Y14 receptor.

Area of Science:

  • Gastroenterology
  • Pharmacology
  • Molecular Biology

Background:

  • P2Y receptors are known to regulate gastrointestinal functions.
  • P2Y14 is the newest member of the nucleotide-sugar receptor family.
  • P2ry14 mRNA is expressed in the rat gut, particularly in the forestomach.

Purpose of the Study:

  • To investigate the role of the P2Y14 receptor in stomach motility.
  • To examine the effects of UDP-glucose and UDP-galactose on forestomach contractility.
  • To assess the impact of P2Y14 receptor deletion on gastric emptying in vivo.

Main Methods:

  • Experiments using isolated rat forestomach tissue.
  • Utilizing cognate agonists UDP-glucose and UDP-galactose.
  • Employing wild-type (WT) and P2Y14 knockout (KO) mice.
  • In vivo gastric emptying studies in rats and mice.

Main Results:

  • UDP-glucose and UDP-galactose increased baseline muscle tension and contraction amplitude in rat forestomach.
  • UDP-glucose enhanced forestomach contractility in WT mice but not in KO mice.
  • UDP-glucose reduced gastric emptying in rats and both WT and KO mice.
  • No significant difference in gastric emptying between WT and KO animals treated with saline or d-glucose.

Conclusions:

  • The P2Y14 receptor plays a role in rodent stomach contractility.
  • UDP-glucose can delay gastric emptying independently of the P2Y14 receptor.
  • Deletion of the P2Y14 receptor does not alter gastric emptying in vivo.

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