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RESEARCH PRODUCT

Alterations in the Hippocampal Endocannabinoid System in Diet-Induced Obese Mice

Ken MackieFrauke SteindelFederico MassaGiacomo ManciniBeat LutzStéphane H. R. OlietGerd GeisslingerHelmut SchmidtCarlo Angioni

subject

Malemedicine.medical_specialtyPolyunsaturated Alkamidesmedicine.medical_treatmentmedia_common.quotation_subjectArachidonic AcidsBiologyHippocampusArticlegamma-Aminobutyric acidGlyceridesMice03 medical and health sciences0302 clinical medicineReceptor Cannabinoid CB1Internal medicineCannabinoid Receptor ModulatorsCannabinoid receptor type 1medicineAnimalsObesityReceptorgamma-Aminobutyric Acid030304 developmental biologymedia_commonMice KnockoutNeurons0303 health sciencesLong-Term Synaptic DepressionGeneral NeuroscienceAppetiteDietary FatsEndocannabinoid systemMice Inbred C57BLDisease Models AnimalLipoprotein LipaseEndocrinologynervous systemSynapsesSynaptic plasticitylipids (amino acids peptides and proteins)CannabinoidDiet-induced obese030217 neurology & neurosurgeryEndocannabinoidsmedicine.drug

description

The endocannabinoid (eCB) system plays central roles in the regulation of food intake and energy expenditure. Its alteration in activity contributes to the development and maintenance of obesity. Stimulation of the cannabinoid receptor type 1 (CB1receptor) increases feeding, enhances reward aspects of eating, and promotes lipogenesis, whereas its blockade decreases appetite, sustains weight loss, increases insulin sensitivity, and alleviates dysregulation of lipid metabolism. The hypothesis has been put forward that the eCB system is overactive in obesity. Hippocampal circuits are not directly involved in the neuronal control of food intake and appetite, but they play important roles in hedonic aspects of eating. We investigated the possibility whether or not diet-induced obesity (DIO) alters the functioning of the hippocampal eCB system. We found that levels of the two eCBs, 2-arachidonoyl glycerol (2-AG) and anandamide, were increased in the hippocampus from DIO mice, with a concomitant increase of the 2-AG synthesizing enzyme diacylglycerol lipase-α and increased CB1receptor immunoreactivity in CA1 and CA3 regions, whereas CB1receptor agonist-induced [35S]GTPγS binding was unchanged. eCB-mediated synaptic plasticity was changed in the CA1 region, as depolarization-induced suppression of inhibition and long-term depression of inhibitory synapses were enhanced. Functionality of CB1receptors in GABAergic neurons was furthermore revealed, as mice specifically lacking CB1receptors on this neuronal population were partly resistant to DIO. Our results show that DIO-induced changes in the eCB system affect not only tissues directly involved in the metabolic regulation but also brain regions mediating hedonic aspects of eating and influencing cognitive processes.

https://doi.org/10.1523/jneurosci.2648-09.2010