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Mice Expressing a "Hyper-Sensitive" Form of the Cannabinoid Receptor 1 (CB1) Are Neither Obese Nor Diabetic
David J Marcus1,2,3, Michael L Zee3, Brian J Davis1,2
1Gill Center for Biomolecular Science, Indiana University, Bloomington, Indiana, 47405,United States of America.
Abstract:
Multiple lines of evidence implicate the endocannabinoid signaling system in the modulation of metabolic disease. Genetic or pharmacological inactivation of CB1 in rodents leads to reduced body weight, resistance to diet-induced obesity, decreased intake of highly palatable food, and increased energy expenditure. Cannabinoid agonists stimulate feeding in rodents and increased levels of endocannabinoids can disrupt lipid metabolism. Therefore, the hypothesis that sustained endocannabinoid signaling can lead to obesity and diabetes was examined in this study using S426A/S430A mutant mice expressing a desensitization-resistant CB1 receptor. These mice display exaggerated and prolonged responses to acute administration of phytocannabinoids, synthetic cannabinoids, and endocannabinoids. As a consequence these mice represent a novel model for determining the effect of enhanced endocannabinoid signaling on metabolic disease. S426A/S430A mutants consumed equivalent amounts of both high fat (45%) and low fat (10%) chow control diet compared to wild-type littermate controls. S426A/S430A mutants and wild-type mice fed either high or low fat control diet displayed similar fasting blood glucose levels and normal glucose clearance following a 2 g/kg glucose challenge. Furthermore, S426A/S430A mutants and wild-type mice consumed similar amounts of chow following an overnight fast. While both THC and JZL195 significantly increased food intake two hours after injection, this increase was similar between the S426A/S430A mutant and wildtype control mice Our results indicate that S426A/S430A mutant mice expressing the desensitization-resistant form of CB1 do not exhibit differences in body weight, food intake, glucose homeostasis, or re-feeding following a fast.
Insights
Mice with a desensitization-resistant CB1 receptor did not show changes in body weight, food intake, or glucose levels. This suggests sustained endocannabinoid signaling does not cause obesity or diabetes in this model.
Area of Science:
- Metabolic disease research
- Endocannabinoid system pharmacology
- Obesity and diabetes pathogenesis
Background:
- The endocannabinoid system modulates metabolic disease.
- CB1 receptor inactivation in rodents reduces body weight and obesity.
- Cannabinoid agonists stimulate feeding and disrupt lipid metabolism.
Purpose of the Study:
- To investigate if sustained endocannabinoid signaling leads to obesity and diabetes.
- To utilize a novel mouse model (S426A/S430A mutants) with desensitization-resistant CB1 receptors.
- To determine the metabolic effects of enhanced endocannabinoid signaling.
Main Methods:
- Utilized S426A/S430A mutant mice with desensitization-resistant CB1 receptors.
- Compared food intake on high-fat and low-fat diets between mutant and wild-type mice.
- Assessed fasting blood glucose, glucose tolerance, and re-feeding responses after acute cannabinoid administration.
Main Results:
- S426A/S430A mutants consumed similar amounts of high-fat and low-fat diets compared to controls.
- No significant differences were observed in fasting blood glucose or glucose clearance.
- Acute administration of THC and JZL195 increased food intake similarly in both mutant and wild-type mice.
Conclusions:
- Sustained endocannabinoid signaling via desensitization-resistant CB1 receptors did not alter body weight, food intake, or glucose homeostasis.
- The S426A/S430A mutant mouse model does not support the hypothesis that enhanced endocannabinoid signaling directly causes obesity and diabetes.
- Further research is needed to fully elucidate the role of endocannabinoid signaling in metabolic regulation.

