Skip to content

Ketamine’s rapid antidepressant effects are mediated by Ca2+-permeable AMPA receptors

Anastasiya Zaytseva, E. Bouckova, McKennon J. Wiles, Madison H. Wustrau, Isabella G. Schmidt, Hadassah Mendez-Vazquez, L. Khatri, Seonil Kim

bioRxiv January 16, 2023 preprint DOI: 10.7554/elife.86022 (opens in new tab)

Study at a glance

AI-extracted from the abstract
Characteristics Preclinical study combining cultured neurons and in vivo mouse experiments
Population Cultured mouse hippocampal neurons and mice of both sexes
Interventions Ketamine CP-AMPAR antagonist
Dose sub-anesthetic dose; low dose
Duration One hour of ketamine treatment in cultured neurons; within one hour after treatment in mice
Measures open field test, tail suspension test
Topics Esketamine Ketamine
Key findings Ketamine at a low dose appears to reduce calcineurin activity in the hippocampus, which increases GluA1 phosphorylation and expression of calcium-permeable, GluA2-lacking AMPA receptors, enhancing synaptic strength. This mechanism is proposed to underlie ketamine's rapid reduction of anxiety- and depression-like behavior in mice, since blocking CP-AMPARs abolished the behavioral effects.

Abstract

Ketamine is shown to enhance excitatory synaptic drive in the hippocampus, which is presumed to underlie its rapid antidepressant effects. Moreover, ketamine’s therapeutic actions are likely mediated by enhancing neuronal Ca2+ signaling. However, ketamine is a noncompetitive NMDA receptor (NMDAR) antagonist that inhibits excitatory synaptic transmission and postsynaptic Ca2+ signaling. Thus, it is a puzzling question how ketamine enhances glutamatergic and Ca2+ activity in neurons to induce rapid antidepressant effects while blocking NMDARs in the hippocampus. Here, we find that ketamine treatment for one hour in cultured mouse hippocampal neurons significantly reduces calcineurin activity to elevate AMPA receptor (AMPAR) subunit GluA1 phosphorylation. This phosphorylation ultimately induces the expression of Ca2+- Permeable, GluA2-lacking, and GluA1-containing AMPARs (CP-AMPARs). Such ketamine-induced expression of CP-AMPARs enhances glutamatergic activity and synaptic plasticity in cultured hippocampal neurons. When a sub-anesthetic dose of ketamine is given to mice, it increases synaptic GluA1 levels, but not GluA2, and GluA1 phosphorylation in the hippocampus within one hour after treatment. These changes are likely mediated by ketamine-induced reduction of calcineurin activity in the hippocampus. Using the open field and tail suspension tests, we demonstrate that a low dose of ketamine rapidly reduces anxiety-like and depression-like behaviors in both male and female mice. However, when in vivo treatment of a CP-AMPAR antagonist abolishes the ketamine’s effects on animals’ behavior. We thus discover that ketamine at the low dose promotes the expression of CP-AMPARs via reduction of calcineurin activity in the hippocampus, which in turn enhances synaptic strength to induce rapid antidepressant actions.