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The acute effects of methoxphenidine on behaviour and pharmacokinetics profile in animal model.

Kristýna Štefková-mazochová, Hynek Danda, Vladimír Mazoch, Lucie Olejníková-Ladislavová, Klára Šíchová, Natalie Paškanová, Magdaléna Vágnerová, Bronislav Jurásek, Pavel Ryšánek, Martin Šíma, Adam Šafanda, Quang Hiep Bui, Martin Kuchař, Tomáš Páleníček

Progress in neuro-psychopharmacology & biological psychiatry March 20, 2025 DOI: 10.1016/j.pnpbp.2025.111285 via PubMed

Summary

AI-generated from the abstract

Methoxphenidine (MXP), a new psychoactive substance, rapidly crosses the blood-brain barrier in Wistar rats, reaching peak concentrations in serum and brain 30 minutes after injection, with a half-life of 2.15 hours. Low to moderate doses (10-20 mg/kg) increase locomotor activity in an open field test, while a higher dose (40 mg/kg) decreases it. All doses disrupt sensorimotor gating (prepulse inhibition), an effect linked to psychosis. MXP shows moderate acute toxicity with an estimated LD50 of 500 mg/kg subcutaneously. The drug exhibits a profile similar to dissociative anesthetics, producing stimulant and anxiogenic effects at lower doses and sedative effects at higher doses, indicating risks of serious adverse health outcomes from recreational use.

Study at a glance

Characteristics Experimental study Peer reviewed
Population Wistar rats
Intervention Methoxphenidine (MXP)
Dose 10-20 mg/kg, 40 mg/kg, 500 mg/kg
Keywords Methoxphenidine Pharmacokinetics Systemic toxicity Wistar rats Investigation
Citations 3
Key finding Methoxphenidine produces stimulant effects at low doses, sedative effects at high doses, disrupts sensorimotor gating, and has moderate acute toxicity with an LD50 of 500 mg/kg in rats.

Abstract

Methoxphenidine (MXP) is classified as a new psychoactive substance that has recently emerged on the illicit drug market. Understanding the pharmacological and behavioural profiles of newly emerging drugs is essential for a better understanding of their psychotropic effects and potential toxicity. Therefore, in this study, we investigated a broad range of effects of acute MXP administration: pharmacokinetics in the brain and serum; behaviour (open field and prepulse inhibition), systemic toxicity (lethal dose; LD 50), and histopathology changes in parenchymal organs of Wistar rats. MXP rapidly crossed the blood-brain barrier, reaching peak median concentrations in both serum and brain 30 min post-administration, followed by an elimination phase with a half-life of 2.15 h. Locomotor activity in the open field test displayed a dose-response effect at low to moderate doses (10-20 mg/kg MXP). At higher doses (40 mg/kg), locomotor activity decreased. All doses of MXP significantly disrupted prepulse inhibition and the effect was present during the onset of its action as well as 60 min after treatment. Additionally, MXP demonstrated moderate acute toxicity, with an estimated LD50 of 500 mg/kg when administered subcutaneously. In summary, MXP exhibited a profile similar to typical dissociative anesthetics, producing stimulant and anxiogenic effects at lower doses, sedative effects at higher doses, and disrupting sensorimotor gating. The accumulation of MXP in brain tissue is likely to contribute to acute intoxication in humans, potentially leading to negative experiences. Our findings highlight the potentially dangerous effects of recreational MXP use and underscore the risks of inducing serious adverse health outcomes.

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