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.

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