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Rincel, M.

Publications and source records attributed to Rincel, M..

2 recordsLinked to original sources

ILC3s are Required for Enterocyte Homeostasis to Food Intake

Food provides nutrients that are selectively absorbed by the intestine, but, at the same time, may contain elements that challenge the intestinal barrier and induce post-prandial inflammation (PPI). How PPI is controlled in order to avoid pathological perturbation of homeostasis remains unclear. Here, we report that during fasting, enterocytes increase their absorptive potential and oxidative metabolism, a program that is largely reversed upon food intake of lipids that perturb the intestinal barrier and induce PPI. Such perturbation is countered by ILC3s, in the absence of which PPI increases, program reversal does not occur, and enterocytes engage into excessive oxidative metabolism. This enterocyte state leads to critical hypoglycemia as a consequence of decreased glucose absorption and increased insulinemia, recapitulating the pathological situation found in patients suffering from intestinal damage and sepsis. We hereby uncover a critical function for ILC3s in maintaining enterocyte homeostasis upon challenging food intake.

immunology↗

Non-obese genetic type 2 diabetes causes brain and behavioral hallmarks of chronic stress

The comorbidity of obesity, type 2 diabetes (T2D), and psychiatric disorders-- particularly anxiety and depression--is well documented. However, it remains unclear whether T2D, independently of obesity, contributes to the development of emotional dysfunctions. Furthermore, alterations in the hypothalamic-pituitary-adrenal (HPA) stress axis are commonly associated with both T2D and depression, but the role of stress in emotional disorders linked to T2D has been poorly explored. This study aimed to investigate the impact of T2D, independent of obesity, on the neuroendocrine stress axis, as well as molecular, cellular, and behavioral indicators of emotional dysfunction. Using the non-obese Goto-Kakizaki (GK) rat model of T2D, we assessed the effects of diabetes on hormonal and neuronal stress responses, molecular and structural markers of stress in the brain, and anxiety- and depressive-like behaviors. We also evaluated the impact of adrenalectomy in GK rats to determine the contribution of glucocorticoids to their behavioral impairments. Our findings reveal that non-obese diabetes leads to heightened endocrine and brain responses to stress, along with upregulation of stress-related molecular markers and structural features indicative of chronic stress, particularly in the medial prefrontal cortex. Additionally, GK rats exhibited pronounced anxiety- and depressive-like behaviors. Importantly, lowering glucocorticoid levels in GK rats helped alleviate some of the metabolic and emotional disturbances. This study suggests that T2D, independent of obesity, induces stress-related brain and behavioral changes, partly mediated by glucocorticoids. HighlightsO_LIT2D disrupts endocrine and neural responses to stress. C_LIO_LIT2D alters stress-related gene expression in the medial prefrontal cortex. C_LIO_LIT2D induces structural changes in the medial prefrontal cortex. C_LIO_LIT2D contributes to anxiety- and depressive-like behaviors. C_LIO_LIReducing corticosterone levels mitigates anxiety-like behavior in diabetic rats. C_LI

neuroscience↗