Related Experiment Video
Updated: Apr 20, 2026

Chronic Stress Shifts Effort-Related Choice Behavior in a Y-Maze Barrier Task in Mice
Published on: August 13, 2020
Behavioral and molecular alterations in mice resulting from chronic treatment with dexamethasone: relevance to
U Skupio1, M Tertil1, M Sikora1
1Department of Molecular Neuropharmacology, Institute of Pharmacology, Polish Academy of Sciences, Poland.
Abstract:
Chronic stress, the administration of glucocorticoids and the prolonged activation of glucocorticoid receptors (GRs) are reported to induce affective changes in humans and rodents that resemble a depressive state. However, data concerning the behavioral and molecular effects of the selective activation of specific GRs are limited, and the conclusions derived remain debatable. In this study, our goal was to investigate the behavioral and molecular changes following the prolonged activation of GRs in mice via exposure to the specific agonist dexamethasone (DEX). C57BL/6J mice were injected daily with DEX (4 mg/kg, i.p.) or saline, and the behavior of the animals was assessed in the following paradigms: the forced swimming test (FST), the light-dark box test, the saccharin preference test and activity boxes. The mRNA expression levels of the corticosteroid receptors mineralocorticoid (MR, Nr3c2) and glucocorticoid (GR, Nr3c1), selected stress dependent genes and glial markers were analyzed in the prefrontal cortex, hippocampus and striatum. DEX-treated mice exhibited a variety of depression-like behaviors: increased time of immobility in the FST, a reduced preference for saccharin consumption and increased anxiety-like behavior. Behavioral alterations were accompanied by a decrease in the mRNA expression of GR and the increased expression of Fkbp5 and Sgk1 in the prefrontal cortex, hippocampus and striatum of DEX-treated mice. Furthermore, our results indicate a decrease in the mRNA expression of glutamate aspartate transporter (GLAST, Slc1a3), an astroglial cell marker, in the hippocampus and prefrontal cortex. These results demonstrate that the prolonged activation of GR receptors induced a depression-like state in mice, activated stress-related genes and induced a decrease in the mRNA expression of GLAST, an astroglial marker, in the prefrontal cortex and hippocampus. Together, the results reported here challenge several hypotheses concerning the role of GRs in the development of behavioral and molecular alterations relevant to stress-related disorders, such as depression, under the same experimental conditions.
Insights
Prolonged activation of glucocorticoid receptors (GRs) using dexamethasone in mice induced depression-like behaviors and altered stress-related gene expression. This study challenges existing hypotheses on GRs
Area of Science:
- Neuroscience
- Molecular Biology
- Behavioral Science
Background:
- Chronic stress and glucocorticoid administration can induce depressive states.
- Limited data exists on selective glucocorticoid receptor (GR) activation's effects.
- Existing conclusions on GRs' role in affective disorders are debated.
Purpose of the Study:
- To investigate behavioral and molecular changes from prolonged GR activation.
- To use dexamethasone (DEX), a specific GR agonist, in a mouse model.
- To analyze stress-related gene and glial marker expression.
Main Methods:
- C57BL/6J mice received daily injections of DEX (4 mg/kg) or saline.
- Behavioral tests included forced swimming, light-dark box, saccharin preference, and activity monitoring.
- mRNA expression of corticosteroid receptors, stress genes, and glial markers was analyzed in brain regions (prefrontal cortex, hippocampus, striatum).
Main Results:
- DEX-treated mice showed increased immobility (FST), reduced saccharin preference, and increased anxiety.
- Decreased GR mRNA and increased Fkbp5 and Sgk1 mRNA were observed in DEX-treated mice.
- Astroglial marker GLAST (Slc1a3) mRNA decreased in the hippocampus and prefrontal cortex.
Conclusions:
- Prolonged GR activation via DEX induces depression-like behaviors and alters stress-related gene expression in mice.
- This activation also decreases GLAST mRNA in key brain areas.
- Findings challenge current hypotheses regarding GRs' role in stress-related disorders like depression.
More Related Videos
09:44Evaluating Therapeutic Interventions in the SHIP-deficient Mouse Model of Crohn Disease-like Ileitis and Fibrosis
Published on: October 14, 2025
06:52Behavioral and Locomotor Measurements Using an Open Field Activity Monitoring System for Skeletal Muscle Diseases
Published on: September 29, 2014