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Published on: October 2, 2018
Developmental timing of repeated dexamethasone exposure determines growth and modulates metabolic responsiveness in
Carolina de Moraes Silveira Peixe1, Paulo Henrique Evangelista-Silva2, Alexandre Giusti-Paiva1
1Laboratory of Investigation in Chronic Diseases, LIDoC, Center of Biological Sciences, Federal University of Santa Catarina - UFSC, Florianópolis, SC 88040-900 Brazil; Graduate Program in Pharmacology, Center of Biological Sciences, Federal University of Santa Catarina - UFSC, Florianópolis, SC 88040-900 Brazil.
Abstract:
Dexamethasone (DEX), a synthetic glucocorticoid (GC) widely used for its anti-inflammatory and immunosuppressive properties, is associated with adverse metabolic and diabetogenic effects. Whether early-life exposure to DEX modifies metabolic disturbances induced by subsequent treatments remains unclear. We investigated this by subjecting male Wistar rats to up to three treatment cycles initiated on postnatal days 30, 60, and 90. Each cycle consisted of five consecutive daily intraperitoneal injections of DEX (1.0 mg/kg) or saline (1 mL/kg). Animals were assigned to five groups according to exposure history: Control, 90, 30 + 90, 60 + 90, and 30 + 60 + 90. After the final cycle, glucose tolerance tests were performed, followed by blood and tissue collection. DEX reduced body mass gain and food intake across all regimens, leading to lower adult body mass, particularly after three cycles. All DEX-treated groups developed glucose intolerance, although this effect was attenuated in the 30 + 60 + 90 group. Hyperinsulinemia and increased hepatic triacylglycerol and glycogen content were observed in all groups except the 30 + 60 + 90 group. DEX-induced β-cell mass expansion was absent in animals exposed on postnatal day 30. Hepatic genes involved in glucose metabolism were upregulated after one or two exposures, without corresponding changes in protein levels. In contrast, repeated exposure (30 + 60 + 90) enhanced GC-responsive gene expression, indicating that upstream GC receptor signaling was preserved despite limited metabolic remodeling. Increased hypothalamic Zbtb16 mRNA expression further supported the integrity of central GC responsiveness. In summary, early-life DEX exposure impairs growth but attenuates several metabolic disturbances induced by later treatments, highlighting long-term consequences of GC therapy.
Insights
Early-life exposure to dexamethasone (DEX) in rats impairs growth but lessens later metabolic issues. This suggests developmental timing influences glucocorticoid (GC) therapy
Area of Science:
- Endocrinology
- Metabolic Research
- Developmental Biology
Background:
- Dexamethasone (DEX), a synthetic glucocorticoid (GC), has anti-inflammatory uses but causes metabolic side effects.
- The impact of early-life DEX exposure on later metabolic disturbances is not well understood.
Purpose of the Study:
- To investigate how early-life dexamethasone exposure affects metabolic disturbances from subsequent DEX treatments in male Wistar rats.
- To determine if developmental timing of GC exposure influences long-term metabolic outcomes.
Main Methods:
- Male Wistar rats received up to three cycles of DEX or saline injections starting at postnatal days 30, 60, and 90.
- Glucose tolerance tests, blood, and tissue samples were analyzed after the final treatment cycle.
- Gene expression and metabolic markers were assessed in liver and hypothalamus.
Main Results:
- DEX reduced body mass gain and food intake, leading to lower adult body mass.
- All DEX-exposed groups showed glucose intolerance, but this was attenuated in rats exposed at 30, 60, and 90 days.
- Early DEX exposure (postnatal day 30) prevented DEX-induced beta-cell expansion and attenuated hyperinsulinemia and hepatic lipid accumulation.
Conclusions:
- Early-life DEX exposure impairs growth but can attenuate adverse metabolic effects of later GC treatments.
- Developmental timing of GC exposure is critical in determining long-term metabolic consequences.
- Central glucocorticoid receptor signaling remains responsive even with limited metabolic adaptation.
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