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Rapid Hippocampal Synaptic Potentiation Induced by Ketamine Metabolite ( 2R , 6R )-Hydroxynorketamine Persistently Primes Synaptic Plasticity.

Kyle A Brown, Musa I Ajibola, Todd D Gould

bioRxiv : the preprint server for biology October 22, 2024 preprint DOI: 10.1101/2024.10.18.619152 via PubMed

Summary

AI-generated from the abstract

A metabolite of ketamine, (2R,6R)-hydroxynorketamine (HNK), rapidly potentiates synaptic transmission at the Schaffer collateral-CA1 synapse in mouse hippocampal slices, an effect that does not require N-methyl-D-aspartate receptor (NMDAR) activity. However, NMDAR activity is necessary to sustain a metaplastic state that lowers the threshold for long-term potentiation (LTP) hours after HNK exposure. The rapid potentiation depends on protein kinase A (PKA) and adenylyl cyclase 1 (AC1), but not AC5. These findings suggest that HNK's rapid synaptic actions initiate sustained priming mechanisms that favor antidepressant-relevant plasticity, offering a target for novel antidepressant strategies.

Study at a glance

Characteristics In vitro electrophysiology with pharmacological manipulation
Population Mouse hippocampal slices
Keywords Neuroscience Psychopharmacology Mental-health Brain-research Antidepressants
Key finding HNK rapidly potentiates SC-CA1 synaptic transmission via PKA and AC1 activity, independent of NMDARs, but NMDAR activity is required to maintain synaptic priming that persistently facilitates LTP.

Abstract

The pharmacologically active ( R , S )-ketamine (ketamine) metabolite ( 2R , 6R )-hydroxynorketamine (HNK) maintains ketamine's preclinical antidepressant profile without adverse effects. While hypotheses have been proposed to explain how ketamine and its metabolites initiate their antidepressant-relevant effects, it remains unclear how sustained therapeutic actions arise following drug elimination. To distinguish the physiological mechanisms involved in the rapid from sustained actions of HNK, we utilized extracellular electrophysiology combined with pharmacology to develop an in vitro hippocampal slice incubation model that exhibited pharmacological fidelity to the 1) rapid synaptic potentiation induced by HNK at the Schaffer collateral-CA1 (SC-CA1) synapse during bath-application to slices collected from mice, and 2) maintenance of metaplastic (priming) activity that lowered the threshold for N- methyl-D-aspartate receptor (NMDAR) activation-dependent long-term potentiation (LTP) hours after in vivo dosing. We then used this model to reveal novel druggable mechanisms engaged in HNK's temporally-sensitive antidepressant synaptic actions, finding that the induction of synaptic potentiation by HNK did not require NMDAR activity, but NMDAR activity was necessary to maintain synaptic priming. HNK required protein kinase A (PKA) activity to rapidly potentiate SC-CA1 neurotransmission to facilitate synaptic priming that persistently promoted LTP formation. HNK's rapid actions were blocked by inhibitors of adenylyl cyclase 1 (AC1), but not an AC5 inhibitor. We conclude that HNK rapidly potentiates SC-CA1 synaptic efficacy, which then stimulates priming mechanisms that persistently favor antidepressant-relevant plasticity. Targeting such priming mechanisms may be an effective antidepressant strategy, and using approaches such as our incubation model may aid in revealing novel pharmacological targets.

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