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Stilgenbauer, L.

Publications and source records attributed to Stilgenbauer, L..

2 recordsLinked to original sources

Prenatal benzene exposure alters offspring hypothalamic development predisposing to metabolic disease in later life

The hypothalamus is essential in the regulation of metabolism, notably during critical windows of development. An abnormal hormonal and inflammatory milieu during development can trigger persistent changes in the function of hypothalamic circuits, leading to long-lasting effects on the bodys energy homeostasis and metabolism. We recently demonstrated that gestational exposure to benzene at smoking levels induces severe metabolic dysregulation in the offspring. Given the central role of the hypothalamus in metabolic control, we hypothesized that prenatal exposure to benzene impacts hypothalamic development, contributing to the adverse metabolic effects in the offspring. C57BL/6JB dams were exposed to benzene in the inhalation chambers exclusively during pregnancy (from E0.5 to E19). The transcriptome analysis of the offspring hypothalamus at postnatal day 21 (P21) revealed changes in genes related to metabolic regulation, inflammation, and neurodevelopment exclusively in benzene-exposed male offspring. Moreover, the hypothalamus of prenatally benzene-exposed male offspring displayed alterations in orexigenic and anorexigenic projections, impairments in leptin signaling, and increased microgliosis. Additional exposure to benzene during lactation did not promote further microgliosis or astrogliosis in the offspring, while the high-fat diet (HFD) challenge in adulthood exacerbated glucose metabolism and hypothalamic inflammation in benzene-exposed offspring of both sexes. These findings reveal the persistent impact of prenatal benzene exposure on hypothalamic circuits and neuroinflammation, predisposing the offspring to long-lasting metabolic health conditions.

neuroscience↗

Growth hormone receptor (GHR) in AgRP neurons regulatesthermogenesis in aged mice in a sex-specific manner

Evidence for hypothalamic regulation of energy homeostasis and thermoregulation in brown adipose tissue (BAT) during aging has been well recognized, yet the central molecular mediators involved in this process are poorly understood. The arcuate hypothalamus (ARC), orexigenic agouti-related peptide (AgRP) neurons control nutrient intake, energy homeostasis, and BAT thermogenesis. To determine the roles of growth hormone receptor (GHR) signaling in the AgRP neurons we used mice with the AgRP-specific GHR deletion (AgRP{Delta}GHR). We found that female AgRP{Delta}GHR mice were resistant to temperature adaptation, and their body core temperature remained significantly lower when held at 10{degrees}C, 22{degrees}C, or 30{degrees}C, compared to control mice. Low body core temperature in female AgRP{Delta}GHR mice has been associated with significant reductions in Ucp1 and Pgc1 expression in the BAT. Further, neuronal activity in AgRP in response to cold exposure was blunted in AgRP{Delta}GHR females, while the number of Fos+ AgRP neurons was increased in control females exposed to cold. Global transcriptome from BAT identified increased expression of genes related to immune responses and chemokine activity and decreased expression of genes involved in triglycerides synthesis and metabolic pathways in AgRP{Delta}GHR females. Importantly, these were the same genes that are downregulated by thermoneutrality in control mice but not in the AgRP{Delta}GHR animals. Collectively, these data demonstrate a novel circuit of thermal regulation between the hypothalamic AgRP-GHR and BAT and provide insight into the brain systems that are critical for the thermogenic vitality of the elderly.

neuroscience↗