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Updated: Sep 30, 2025

Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
Glucocorticoid Receptor Overexpression in the Dorsal Hippocampus Attenuates Spatial Learning and Synaptic Plasticity
Dana Lengel1,2, Zoe L Romm3, Anna Bostwick4
1Nash Family Department of Neuroscience, Icahn School of Medicine at Mount Sinai, New York, New York, USA.
Insights
Pediatric traumatic brain injury (TBI) impairs spatial learning and memory. Restoring glucocorticoid receptor (GR) function in the hippocampus improves cognitive deficits and synaptic plasticity following TBI.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Molecular Biology
Background:
- Pediatric traumatic brain injury (TBI) causes lasting cognitive and learning deficits.
- The dorsal hippocampus (DH) plays a crucial role in hippocampal-dependent cognitive functions.
Purpose of the Study:
- To investigate the role of glucocorticoid receptor (GR) function in the DH following pediatric TBI.
- To assess the impact of GR function on hippocampal-dependent cognitive function and synaptic plasticity.
Main Methods:
- Assessed spatial learning and memory using the Morris water maze in adolescent rats post-TBI.
- Measured long-term potentiation (LTP) in the CA1 region of the DH.
- Quantified the expression of GR-inducible genes (sgk1) and glutamate receptor subunits (GluA1, GluA2).
- Utilized lentiviral transfection to overexpress human GR (hGR) in the DH.
Main Results:
- TBI significantly impaired spatial learning, memory, and LTP induction/maintenance in adolescent rats.
- TBI decreased the expression of sgk1, indicating impaired GR transcriptional activity.
- hGR overexpression in the DH ameliorated cognitive deficits and LTP impairments.
- GR overexpression increased sgk1 and glutamate receptor subunit (GluA1, GluA2) mRNA levels.
Conclusions:
- Dorsal hippocampal GR function is critical for mitigating learning and memory deficits after pediatric TBI.
- GR-mediated regulation of glutamate receptor subunit expression in the DH is implicated in TBI-induced cognitive impairments.
Abstract:
Traumatic brain injury (TBI) in children <4 years of age leads to long-term deficits in cognitive and learning abilities that can persist or even worsen as these children age into adolescence. In this study, the role of glucocorticoid receptor (GR) function in the dorsal hippocampus (DH) in hippocampal-dependent cognitive function and synaptic plasticity were assessed following injury to the 11-day-old rat. Brain injury produced significant impairments in spatial learning and memory in the Morris water maze in male and female rats at 1-month post-injury (adolescence), which was accompanied by impairments in induction and maintenance of long-term potentiation (LTP) in the CA1 region of the DH. Brain injury resulted in a significant decrease in the expression of the glucocorticoid-inducible gene, serum- and glucocorticoid-kinase 1 (sgk1), suggestive of an impairment in GR transcriptional activity within the hippocampus. Lentiviral transfection of the human GR (hGR) in the DH improved spatial learning and memory in the Morris water maze and attenuated LTP deficits following TBI. GR overexpression in the DH was also associated with a significant increase in the mRNA expression levels of sgk1, and the glutamate receptor subunits GluA1 and GluA2 within the hippocampus. Overall, these findings support an important role for dorsal hippocampal GR function in learning and memory deficits following pediatric TBI and suggest that these effects may be related to the regulation of glutamate receptor subunit expression in the DH.
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