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Updated: Jan 25, 2026

Investigating Long-term Synaptic Plasticity in Interlamellar Hippocampus CA1 by Electrophysiological Field Recording
Published on: August 11, 2019
Systemic Blockade of the CB1 Receptor Augments Hippocampal Gene Expression Involved in Synaptic Plasticity but
Kofi-Kermit A Horton1,2, Anushka V Goonawardena1,3, John Sesay1
1Department of Physiology and Pharmacology, Wake Forest University Health Sciences, Winston-Salem, North Carolina.
Insights
Chronic blockade of CB1 receptors with rimonabant did not enhance learning in a memory task. Instead, it slowed acquisition and increased gene expression related to hippocampal synapse remodeling.
Area of Science:
- Neuroscience
- Behavioral Pharmacology
- Molecular Biology
Background:
- CB1 receptor activity influences learning and memory.
- Previous studies show acute CB1 receptor modulation affects memory performance.
- The impact of chronic CB1 receptor blockade on behavioral task acquisition remains unclear.
Purpose of the Study:
- To investigate the effects of chronic rimonabant (CB1 receptor antagonist) exposure on the acquisition of the delayed-nonmatch-to-sample (DNMS) task.
- To determine if chronic CB1 receptor blockade enhances operant task learning.
Main Methods:
- Long-Evans rats were trained on the DNMS task and then administered chronic rimonabant (1.0 mg/kg/day) or vehicle via osmotic mini-pumps.
- Training continued with gradually increasing delays and task contingency reversals.
- Hippocampal gene expression (AMPA receptor subunit, BDNF, Syn1) was analyzed using quantitative real-time PCR.
Main Results:
- Rimonabant-treated rats required more time to achieve stable performance in the DNMS task compared to vehicle controls.
- Significant increases in mRNA expression for the AMPA receptor subunit, brain-derived neurotrophic factor (BDNF), and synapsin 1 (Syn1) were observed in rimonabant-treated rats.
- These gene expression changes suggest increased hippocampal synapse remodeling.
Conclusions:
- Chronic CB1 receptor blockade with rimonabant impairs the acquisition of the DNMS task.
- While rimonabant increases mRNAs associated with hippocampal synapse remodeling, this does not accelerate learning of new behavioral contingencies.
Abstract:
Chronic and acute agonism as well as acute antagonism of CB1 receptors reveal modulation of learning and memory during stable performance of a delayed-nonmatch-to-sample (DNMS) memory task. However, it remains unclear how chronic blockade of the CB1 receptor alters acquisition of the behavioral task. We examined the effects of chronic rimonabant exposure during DNMS task acquisition to determine if blockade of the CB1 receptor with the antagonist rimonabant enhanced acquisition of operant task. Long-Evans rats, trained in the DNMS task before imposition of the trial delay, were surgically implanted with osmotic mini pumps to administer rimonabant (1.0 mg/kg/day) or vehicle (dimethyl sulfoxide/Tween-80/Saline). Following surgical recovery, DNMS training was resumed with the imposition of gradually longer delays (1-30 sec). The number of days required to achieve stable performance with either increasing length of delay or reversal of task contingency was compared between vehicle and rimonabant-treated rats. Following the completion of DNMS training, animals were euthanized, and both hippocampi were harvested for gene expression assay analysis. Rimonabant treatment animals required more time to achieve stable DNMS performance than vehicle-treated controls. Quantitative real-time polymerase chain reaction analysis revealed that the expressions of alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor subunit, brain-derived neurotrophic factor, and synapsin 1 (Syn1) were significantly increased. These results are consistent with rimonabant increasing mRNAs for proteins associated with hippocampal synapse remodeling, but that those alterations did not necessarily accelerate the acquisition of an operant behavioral task that required learning new contingencies.
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