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New insights into methoxetamine mechanisms of action: Focus on serotonergic 5-HT2 receptors in pharmacological and behavioral effects in the rat.

Matteo Marti, Giuseppe Talani, Cristina Miliano, Sabrine Bilel, Francesca Biggio, Jessica Bratzu, Marco Diana, Maria Antonietta De Luca, Liana Fattore

Experimental neurology November 1, 2021 DOI: 10.1016/j.expneurol.2021.113836 via PubMed

Summary

AI-generated from the abstract

Methoxetamine (MXE), a ketamine-like designer drug, alters serotonin levels in the rat medial prefrontal cortex and nucleus accumbens. Blocking serotonin 5-HT2 receptors with selective antagonists attenuated MXE's motor and sensory effects and prevented its reduction of prepulse inhibition, indicating these receptors are key to MXE's sensorimotor actions. In vitro, MXE inhibited NMDA-mediated field potentials and GABA-mediated spontaneous currents in a concentration-dependent manner but did not affect AMPA components or presynaptic glutamate release. The findings suggest MXE acts as an NMDA receptor antagonist, with 5-HT2 receptors crucial for its sensorimotor effects and NMDA and GABA receptors as additional targets.

Study at a glance

Characteristics Multidisciplinary study Peer reviewed
Population Rats and mice
Interventions Methoxetamine ketanserin MDL 100907 ketamine
Dose 0.25 and 0.5 mg/kg, i.v.; 0.1 mg/kg, i.p.; 0.03 mg/kg, i.p.; 3 mg/kg, i.p.
Citations 6
Key finding MXE alters serotonin levels and acts through 5-HT2, NMDA, and GABA receptors to produce its central effects.

Abstract

Methoxetamine (MXE) is a dissociative substance of the arylcyclohexylamine class that has been present on the designer drug market as a ketamine-substitute since 2010. We have previously shown that MXE (i) possesses ketamine-like discriminative and positive rewarding effects in rats, (ii) affects brain processing involved in cognition and emotional responses, (iii) causes long-lasting behavioral abnormalities and neurotoxicity in rats and (iv) induces neurological, sensorimotor and cardiorespiratory alterations in mice. To shed light on the mechanisms through which MXE exerts its effects, we conducted a multidisciplinary study to evaluate the various neurotransmitter systems presumably involved in its actions on the brain. In vivo microdialysis study first showed that a single administration of MXE (0.25 and 0.5 mg/kg, i.v.) is able to significantly alter serotonin levels in the rat medial prefrontal cortex (mPFC) and nucleus accumbens. Then, we observed that blockade of the serotonin 5-HT2 receptors through two selective antagonists, ketanserin (0.1 mg/kg, i.p.) and MDL 100907 (0.03 mg/kg, i.p.), at doses not affecting animals behavior per se, attenuated the facilitatory motor effect and the inhibition on visual sensory responses induced by MXE (3 mg/kg, i.p.) and ketamine (3 mg/kg, i.p.), and prevented MXE-induced reduction of the prepulse inhibition in rats, pointing to the 5-HT2 receptors as a key target for the recently described MXE-induced sensorimotor effects. Finally, in-vitro electrophysiological studies revealed that the GABAergic and glutamatergic systems are also likely involved in the mechanisms through which MXE exerts its central effects since MXE inhibits, in a concentration-dependent manner, NMDA-mediated field postsynaptic potentials and GABA-mediated spontaneous currents. Conversely, MXE failed to alter both the AMPA component of field potentials and presynaptic glutamate release, and seems not to interfere with the endocannabinoid-mediated effects on mPFC GABAergic synapses. Altogether, our results support the notion of MXE as a NMDA receptor antagonist and shed further lights into the central mechanisms of action of this ketamine-substitute by pointing to serotonin 5-HT2 receptors as crucial players in the expression of its sensorimotor altering effects and to the NMDA and GABA receptors as potential further important targets of action.

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