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Helbling, J.-C.

Publications and source records attributed to Helbling, J.-C..

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Obesogenic diet impairs memory consolidation via the hippocampal endocannabinoid system

Although obesogenic high-fat/high-sugar diets impair memory function in humans and rodents, the underlying mechanisms remain elusive. Given that the brain endocannabinoid system and type-1 cannabinoid receptors (CB1R) control memory processes and are overactive under obesogenic conditions, we studied whether the effects of obesogenic diet consumption on memory function are dependent on this system. Using an object recognition memory (ORM) task in male mice, we showed that CB1R activity is required for obesogenic diet-induced impairment of long-term memory performance. This impairment was prevented by post-training systemic blockade of CB1R, which also normalized training-induced hippocampal cellular and synaptic overactivation. Consistently, obesogenic diet potentiated the increase of hippocampal endocannabinoid levels and enhanced CB1R expression induced by ORM, and genetic CB1R deletion from hippocampal glutamatergic neurons abolished diet-induced memory deficits. Strikingly, obesogenic diet enhanced the hippocampal mTOR pathway in a CB1R-dependent manner, and pharmacological mTOR inhibition after training rescued diet-induced ORM consolidation deficits. Together, these results establish how an obesogenic environment can lead to hippocampal overactivation of the endocannabinoid system and of the mTOR pathway to eventually impair memory consolidation. Thus, these results shed light on the mechanisms of diet-induced cognitive alterations and may pave the way to novel therapeutic strategies. HighlightsO_LIObesogenic diet induces long-term memory deficits, which are rescued by CB1R blockade C_LIO_LICB1R blockade rescues diet-induced aberrant hippocampal activity/plasticity after training C_LIO_LIObesogenic diet enhances hippocampal endocannabinoid levels and CB1R after training C_LIO_LIDeletion of hippocampal CB1R rescues diet-induced long-term memory deficits C_LIO_LIObesogenic diet enhances hippocampal mTOR phosphorylation after training C_LIO_LImTOR inhibition rescues diet-induced memory consolidation deficits C_LI

neuroscience↗

Time-restricted feeding prevents memory impairments induced by obesogenic diet consumption in mice, in part through hippocampal thyroid hormone signaling.

The consumption of calorie-rich diet has adverse effects on short and long-term memory, especially when introduced early in life when the brain is still maturing. Time-restricted feeding (TRF) without calorie restriction has proven to be an efficient strategy to reduce the deleterious effects of diet-induced obesity on metabolism. TRF was also shown to be beneficial to restore long-term memory in Alzheimer rodent models. Here, we provide evidence that four weeks of TRF restore the rhythmicity of some metabolic parameters together with short and long-term memory in mice fed a high fat-high sucrose (HFS) diet since weaning. Hippocampal translatome analyses indicated that impaired memory of mice under ad libitum HFS diet is accompanied by changes in genes associated with thyroid hormone signaling and astrocytic genes involved in the regulation of glutamate neurotransmission. TRF restored the diurnal expression variation of part of these genes and intra-hippocampal infusion of T3, the active form of thyroid hormone, rescued the memory performances of ad libitum HFS diet-fed mice. Thus, TRF demonstrates positive effects on both metabolism and memory in mice fed an obesogenic diet, highlighting this nutritional approach as a powerful tool in addressing obesity and its related comorbidities in mice. The analogous time-restricted eating in humans is an easy to implement lifestyle intervention that should now be tested in obese adolescents with memory alterations.

neuroscience↗