Skip to content

(R)-Ketamine exerts antidepressant actions partly via conversion to (2R,6R)-hydroxynorketamine, while causing adverse effects at sub-anaesthetic doses.

Panos Zanos, Jaclyn N Highland, Xin Liu, Timothy A Troppoli, Polymnia Georgiou, Jacqueline Lovett, Patrick J Morris, Brent W Stewart, Craig J Thomas, Scott M Thompson, Ruin Moaddel, Todd D Gould

British journal of pharmacology July 1, 2019 DOI: 10.1111/bph.14683 via PubMed

Summary

AI-generated from the abstract

In mice, (R)-ketamine's metabolism to (2R,6R)-hydroxynorketamine (HNK) enhances its antidepressant-relevant actions. A deuterated form of (R)-ketamine that blocks this metabolism had less potency in antidepressant-sensitive behavioral tests, while (2R,6R)-HNK itself produced dose-dependent sustained antidepressant effects. However, (R)-ketamine also caused NMDA receptor-mediated adverse effects—including locomotor stimulation, conditioned-place preference, prepulse inhibition deficits, and motor incoordination—at sub-anaesthetic doses, with about half the potency of racemic ketamine. These findings indicate that while antidepressant-relevant effects occur at lower doses, there is a potential risk for sensory dissociation and abuse liability at higher doses.

Study at a glance

Characteristics Preclinical study Peer reviewed
Population Mice
Interventions (R)-ketamine (2R 6R)-HNK
Key finding Metabolism of (R)-ketamine to (2R,6R)-HNK increases its potency for antidepressant-relevant actions in mice, but adverse effects occur at sub-anaesthetic doses.

Abstract

(R)-Ketamine (arketamine) may have utility as a rapidly acting antidepressant. While (R)-ketamine has lower potency than (R,S)-ketamine to inhibit NMDA receptors in vitro, the extent to which (R)-ketamine shares the NMDA receptor-mediated adverse effects of (R,S)-ketamine in vivo has not been fully characterised. Furthermore, (R)-ketamine is metabolised to (2R,6R)-hydroxynorketamine (HNK), which may contribute to its antidepressant-relevant actions. Using mice, we compared (R)-ketamine with a deuterated form of the drug (6,6-dideutero-(R)-ketamine, (R)-d2 -ketamine), which hinders its metabolism to (2R,6R)-HNK, in behavioural tests predicting antidepressant responses. We also examined the actions of intracerebroventricularly infused (2R,6R)-HNK. Further, we quantified putative NMDA receptor inhibition-mediated adverse effects of (R)-ketamine. (R)-d2 -Ketamine was identical to (R)-ketamine in binding to and functionally inhibiting NMDA receptors but hindered (R)-ketamine's metabolism to (2R,6R)-HNK. (R)-Ketamine exerted greater potency than (R)-d2 -ketamine in several antidepressant-sensitive behavioural measures, consistent with a role of (2R,6R)-HNK in the actions of (R)-ketamine. There were dose-dependent sustained antidepressant-relevant actions of (2R,6R)-HNK following intracerebroventricular administration. (R)-Ketamine exerted NMDA receptor inhibition-mediated behaviours similar to (R,S)-ketamine, including locomotor stimulation, conditioned-place preference, prepulse inhibition deficits, and motor incoordination, with approximately half the potency of the racemic drug. Metabolism of (R)-ketamine to (2R,6R)-HNK increases the potency of (R)-ketamine to exert antidepressant-relevant actions in mice. Adverse effects of (R)-ketamine require higher doses than those necessary for antidepressant-sensitive behavioural changes in mice. However, our data revealing that (R)-ketamine's adverse effects are elicited at sub-anaesthetic doses indicate a potential risk for sensory dissociation and abuse liability.

Comments

No comments yet.

Log in to comment