Ketamine evokes acute behavioral effects via μ-opioid receptor expressing neurons of the central amygdala.
Matthew B Pomrenze, Sam Vaillancourt, Pierre Llorach, Daniel Ryskamp Rijsketic, Austen B Casey, Nicholas Gregory, Wesley Zhao, Tyler E Girard, Kathryn T Mattox, Juliana S Salgado, Robert C Malenka, Boris D Heifets
Biological psychiatry May 5, 2025 DOI: 10.1016/j.biopsych.2025.04.020 via PubMed
Summary
AI-generated from the abstractKetamine produces a rapid increase in movement (locomotor activation) in mice by acting on mu opioid receptors (MORs) in the central amygdala (CeA). This effect is blocked by the opioid receptor antagonist naltrexone, and the same blockade occurs with a MOR-selective antagonist. Whole-brain imaging showed that naltrexone most strongly altered ketamine-induced cFos expression in the CeA, particularly in neurons that co-express MOR and PKCδ. Interrupting MOR function specifically in the CeA, either with a drug or genetic manipulation, prevented ketamine's locomotor effects. This indicates that ketamine's acute behavioral effects involve opioid signaling in the CeA, which may relate to its antidepressant mechanism in humans.
Study at a glance
| Characteristics | Experimental study Peer reviewed |
|---|---|
| Population | Male and female wild-type mice |
| Interventions | Ketamine naltrexone MOR-selective antagonist MK-801 |
| Topics | Depression Ketamine |
| Keywords | Antidepressant Central amygdala Mu opioid receptor Naltrexone Depression treatment |
| Citations | 11 |
| Key finding | Ketamine acts at mu opioid receptors in the central amygdala to produce acute hyperlocomotion in mice. |
Abstract
Ketamine has anesthetic, analgesic, and antidepressant properties which may involve multiple neuromodulatory systems. In humans, the opioid receptor (OR) antagonist naltrexone blocks the antidepressant effect of ketamine. This mechanism may differentiate ketamine from other NMDA receptor antagonists. Animal models that reflect OR-dependent behavioral effects of ketamine may shed light on the brain regions and circuits that contribute to ketamine's antidepressant mechanism in humans. We screened male and female wild-type mice for a behavioral response to ketamine that could be reversed by OR antagonists in several assays, including locomotor activation, analgesia, and the forced swim test. Whole-brain imaging of cFos expression in ketamine-treated mice, pretreated with naltrexone or vehicle, was used to identify brain areas mediating ketamine / OR interactions. Region-specific pharmacological and genetic interference with μOR (MOR) signaling was used to test predictions of whole-brain imaging results in a subset of behavioral assays. Among a series of behavioral assays, only locomotor-activation was sensitive to ketamine and blocked by an MOR-selective antagonist. Locomotor activation produced by the NMDA receptor antagonist, MK-801, was not OR-dependent. Whole-brain imaging revealed cFos expression in neurons of the central amygdala (CeA) showed the greatest difference between ketamine in the presence versus absence of naltrexone. CeA neurons expressing both MOR and PKCδ were strongly activated by naltrexone, and selectively interrupting MOR function in the CeA either pharmacologically or genetically blocked the locomotor effects of ketamine. These data suggest that ketamine acts at MORs expressed in CeA neurons to produce acute hyperlocomotion.