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The endogenous opioid system in the medial prefrontal cortex mediates ketamine's antidepressant-like actions.

Cheng Jiang, Ralph J DiLeone, Christopher Pittenger, Ronald S Duman

Translational psychiatry February 12, 2024 DOI: 10.1038/s41398-024-02796-0 via PubMed

Summary

AI-generated from the abstract

A single dose of ketamine produces antidepressant-like effects in rats only when the brain's own opioid system is active in the medial prefrontal cortex (mPFC). Blocking opioid receptors with naltrexone—either throughout the body or directly in the mPFC—eliminates ketamine's behavioral effects. Ketamine rapidly increases levels of the opioid β-endorphin and expression of the μ-opioid receptor gene in the mPFC, and boosts production of β-endorphin's precursor in the hypothalamus. Neutralizing β-endorphin in the mPFC with a specific antibody also abolishes ketamine's behavioral and molecular effects, demonstrating that β-endorphin and opioid receptor activation in the mPFC are necessary for ketamine's antidepressant-like actions.

Study at a glance

Characteristics Experimental animal study Peer reviewed
Population Rats
Interventions Ketamine Naltrexone
Topics Ketamine
Keywords Antidepressants Neuroscience Brain chemistry Mental health
Citations 37
Key finding Β-endorphin and activation of opioid receptors in the medial prefrontal cortex are required for the antidepressant-like effects of ketamine in rats.

Abstract

Recent studies have implicated the endogenous opioid system in the antidepressant actions of ketamine, but the underlying mechanisms remain unclear. We used a combination of pharmacological, behavioral, and molecular approaches in rats to test the contribution of the prefrontal endogenous opioid system to the antidepressant-like effects of a single dose of ketamine. Both the behavioral actions of ketamine and their molecular correlates in the medial prefrontal cortex (mPFC) are blocked by acute systemic administration of naltrexone, a competitive opioid receptor antagonist. Naltrexone delivered directly into the mPFC similarly disrupts the behavioral effects of ketamine. Ketamine treatment rapidly increases levels of β-endorphin and the expression of the μ-opioid receptor gene (Oprm1) in the mPFC, and the expression of gene that encodes proopiomelanocortin, the precursor of β-endorphin, in the hypothalamus, in vivo. Finally, neutralization of β-endorphin in the mPFC using a specific antibody prior to ketamine treatment abolishes both behavioral and molecular effects. Together, these findings indicate that presence of β-endorphin and activation of opioid receptors in the mPFC are required for the antidepressant-like actions of ketamine.

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