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de Bem, A. F.

Publications and source records attributed to de Bem, A. F..

2 recordsLinked to original sources

Differential effects of diphenyl diselenide (PhSe)2 on mitochondria-related pathways depending on the cellular energy status in Bovine Vascular Endothelial Cells

Cellular energy metabolism varies depending on tissue and cell type, as well as the availability of energy substrates and energy demands. We recently investigated the variations in cellular metabolism and antioxidant responses in primary bovine vascular endothelial cells (BAECs) under different energetic substrate conditions in vitro, specifically glucose or galactose. In this context, pharmacological agents may affect cells differently depending on their energy metabolism status. In this study, we aimed to characterize the effects of diphenyl diselenide ((PhSe)2), a redox-active molecule known for its prominent cardiovascular effects, on redox-bioenergetic cellular pathways under glycolytic or oxidative conditions in BAECs. Under glucose conditions, (PhSe)2 positively impacted mitochondrial oxidative capacity, as assessed by respirometry, and was associated with changes in mitochondrial cellular dynamics. However, these changes were not observed in cells cultured with galactose. Although (PhSe)2 induced the nuclear translocation of the redox sensitive nuclear factor erythroid 2-related factor 2 (Nrf2) in both glucose and galactose media, Nrf2 remained in the nuclei of cells cultured in galactose for a longer duration. Additionally, activation of another redox sensitive transcription factor, forkhead O3 (FOXO3a) was only detected in galactose media. Notably, (PhSe)2 induced the expression of genes controlling mitochondrial antioxidant capacity and glutathione synthesis and recycling in glucose media, whereas its effects in galactose media were primarily focused on glutathione homeostasis. In conclusion, our findings underscore the critical influence of cellular metabolic status on the antioxidant capacity of redox-active molecules such as (PhSe)2.

biochemistry↗

Early exposure to high-fat diet impairs central and peripheral metabolic function: Impacts on cognition and mitochondrial function

The impact of overnutrition early in life is not restricted to the onset of cardiovascular and metabolic diseases, but also affects critical brain functions related to cognition. This study aimed to evaluate the relationship between peripheral metabolic and bioenergetic changes induced by high-fat diet (HFD) and their impact on hippocampal cognitive functions in juvenile mice. To this purpose, three-week-old male C57BL/6 mice received a HFD or control diet for seven weeks, associated with two low doses of streptozotocin (STZ) or vehicle, to accelerate the metabolic dysfunction. HFD induced metabolic changes in mice, particularly related to glucose metabolism, in spite of the absence of obesity and changes in lipid profile. HFD exposure starting from weaning impaired recognition and spatial memories in mice, without inducing a depressive-like behavior. Increased immunoreactivity for GFAP and a trend towards a decrease in NeuN staining were verified in the hippocampus of HFD-fed mice. HFD caused a bioenergetic impairment in the hippocampus, characterized by a decrease in both O2 consumption related to ATP production and in the maximum respiratory capacity. The thermogenic capacity of brown adipose tissue was impaired by HFD, here verified through the absence of a decrease in O2 consumption after UCP-1 inhibition and increase in the reserve respiratory capacity. Impaired mitochondria function was also observed in the liver of HFD mice, while no changes were verified in O2 consumption in the heart of juvenile mice. These results indicate that the introduction of a HFD early in life has a detrimental impact on bioenergetic and mitochondrial function of tissues with metabolic and thermogenic activities, which is likely related to hippocampal metabolic changes and cognitive impairment. HighlightsO_LIHFD introduced early in life impacts mitochondrial function C_LIO_LIDietary shift early in life leads hippocampal dysfunction C_LIO_LIEarly life HFD exposure disrupts BAT thermogenic acitivity C_LIO_LIHFD-induced hippocampal and BAT mitochondrial dysfunction impacts cognition C_LI

neuroscience↗