Abstract The endocannabinoid system in the central and peripheral nerves plays a crucial role in various physiological processes, including feeding behavior and energy metabolism. In particular, gut endocannabinoids stimulate appetite, and excessive activation of the system can induce hedonic eating, leading to obesity. Previous studies have indicated elevation of gut endocannabinoid levels in high-fat diet-induced or genetically obese rodents. The present study aimed to expand our understanding of gut endocannabinoids involved in feeding behavior during obesity by characterizing the profiles of arachidonic metabolites, including endocannabinoids, in the gut and by examining their impact on feeding behavior in KK- A y mice, an obesity model established by crossing diabetic KK mice with lethal yellow ( A y ) mice. KK- A y mice exhibit hyperphagia compared with lean mice under either free-feeding condition or refeeding condition after 24 h of food deprivation. Meal pattern analyses revealed that hyperphagia in KK- A y was primarily due to higher meal frequency rather than meal size or interval, suggesting a defect in hunger control. In addition, levels of endocannabinoids and other arachidonic acid metabolites such as prostaglandin E 2 and F 2α were elevated in KK- A y mice. Pharmacological blockade of the peripheral cannabinoid receptor 1 and diacylglycerol lipase, but not N-acyl phosphatidylethanolamine phospholipase D, reduced food intake, as did treatment with cyclooxygenase-2 inhibitors. These findings suggest that intestinal 2-arachidonoyl glycerol-dependent cannabinoid receptor 1 activation contributes to hyperphagic behavior in KK- A y mice and prostaglandins are involved in feeding control.
Igarashi et al. (Wed,) studied this question.