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Hichami, A.

Publications and source records attributed to Hichami, A..

2 recordsLinked to original sources

Novel fat-taste enhancers modulate functional connectivity of the reward system following sustained activation of gustatory pathways in mice

Humans and rodents exhibit an innate preference for dietary fat, and dysfunction of lingual fat-taste receptors CD36 and GPR120 in obesity suggests that impaired oro-sensory lipid detection may contribute to its development. Rodent models with reduced fat-taste sensitivity display increased fat intake, highlighting the role of taste perception in dietary regulation. The newly developed NKS-3 and NKS-5, high-affinity agonists for CD36 and CD36/GPR120 receptors, respectively, induce early fat satiation and reduce both fat-rich food intake and body weight gain in diet-induced obese mice. However, the neural mechanisms underlying these effects remain unclear. Here, we investigated the response of the reward system to a sustained activation of CD36 and GPR120 via fat-taste enhancers NKS-3 and NKS-5 compared to linoleic acid (LA). Male C57BL/6JRj mice (N=88) received oral administration of vehicle, 0.2% LA, 50 {micro}M NKS-3 or 75 {micro}M NKS-5 for 10 days. The immunohistochemical analysis of cerebral FosB neuronal expression revealed a reorganization of the functional network connectivity. Behavioral assessments over an additional 10-day period in a second cohort of animals detected no adverse motivational, compulsive-like, depressive or anxiogenic effect of the treatments. Our findings suggest that our fat-taste enhancers may offer a promising therapeutic strategy against obesity, leveraging the oral-gut-brain axis to regulate fat-rich food intake.

neuroscience↗

Linoleic acid supplementation reverses microglial response to diet induced-obesity at hypothalamic, cortical and subcortical level in mice

Obesity is a major risk factor for neuropsychiatric alterations. Fatty regimes lead to systemic and cerebral inflammation, the latest acting through lipotoxicity on hypothalamic structures controlling energy homeostasis. Since literature points to a protective effect of linoleic acid (LA) on mood disorders through the regulation of systemic inflammation, we investigated how five weeks of LA supplementation modulates emotional behaviour and microglia-related neuroinflammation. C57BL/6j mice were fed with either a high-fat (HFD) or a standard diet for 12 weeks, underwent a battery of behavioural tests and were subsequently sacrificed for immunofluorescence staining targeting microglia-specific calcium-binding proteins (IBA-1). Neuroinflammation severity was approximated in multiple hypothalamic, cortical and subcortical regions. Our results show an anxio-depressive-like effect of sustained HFD that neither was alleviated nor worsen with LA supplementation. Increased IBA-1 expression in the HFD group was substantially reversed with LA supplementation. Thus, our results suggest anti-neuroinflammatory properties of LA not restricted to hypothalamic areas, but also evident at the cortical and subcortical level. This study is therefore relevant in the frame of obesity and neuropsychiatric disorders with a neuroinflammatory basis. Further investigation may provide more information to justify dietary strategies aiming at reducing the impact of obesity associated comorbidities.

neuroscience↗