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Updated: Feb 3, 2026

A New Method for Inducing a Depression-Like Behavior in Rats
Published on: February 22, 2018
The novel psychoactive substance methoxetamine induces persistent behavioral abnormalities and neurotoxicity in rats
Giulia Costa1, Marcello Serra1, Nicholas Pintori1
1Department of Biomedical Sciences, Section of Neuroscience, University of Cagliari, Cagliari, Italy.
Abstract:
Methoxetamine (MXE) is a novel psychoactive substance that can induce several short-term effects on emotional states and behavior. However, little is known about the persistent emotional and behavioral effects of MXE. Moreover, neurotoxic effects of MXE have been hypothesized, but never demonstrated in vivo. To clarify these issues, rats received repeated treatment with MXE every other day (0.1-0.5 mg/kg, i.p., × 5), and 7 days later they were challenged with MXE (0.1-0.5 mg/kg, i.p.). Behavioral effects of MXE were first evaluated by measuring emission of ultrasonic vocalizations and locomotor activity after each administration. Thereafter, persistent behavioral effects of MXE were evaluated, starting 8 days after challenge, through elevated plus maze, spontaneous alternation, novel object recognition, and marble burying tests. After completion of behavioral analysis, neurotoxic effects of MXE were evaluated by measuring densities of dopamine transporter, tyrosine hydroxylase, and serotonin transporter in various brain regions. Repeated treatment and challenge with MXE affected neither calling behavior nor locomotor activity of rats. Conversely, rats previously treated with MXE exhibited behavioral alterations in the elevated plus maze, marble burying and novel object recognition tests, suggestive of increased anxiety and impaired non-spatial memory. Noteworthy, the same rats displayed dopaminergic damage in the medial prefrontal cortex, nucleus accumbens, caudate-putamen, substantia nigra pars compacta, and ventral tegmental area, along with accumbal serotonergic damage. Our findings show for the first time that repeated administration of MXE induces persistent behavioral abnormalities and neurotoxicity in rats, which can help elucidating the risks associated with human MXE consumption.
Insights
Methoxetamine (MXE) causes lasting behavioral changes and neurotoxicity in rats, including anxiety and memory impairment. This study demonstrates the potential risks of MXE consumption in humans.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Novel psychoactive substances (NPS) like Methoxetamine (MXE) pose risks due to unknown long-term effects.
- Previous research has hypothesized but not confirmed in vivo neurotoxic effects of MXE.
- Understanding MXE's persistent behavioral and neurotoxic impacts is crucial for public health.
Purpose of the Study:
- To investigate the persistent emotional and behavioral effects of repeated Methoxetamine (MXE) administration in rats.
- To determine if MXE induces neurotoxic damage in key brain regions in vivo.
- To elucidate the potential risks associated with human MXE consumption.
Main Methods:
- Rats received repeated intraperitoneal injections of MXE (0.1–0.5 mg/kg) every other day for 5 doses.
- Behavioral assessments included ultrasonic vocalizations, locomotor activity, elevated plus maze, spontaneous alternation, novel object recognition, and marble burying tests.
- Neurotoxicity was evaluated by measuring dopamine transporter, tyrosine hydroxylase, and serotonin transporter densities in specific brain regions.
Main Results:
- Repeated MXE administration did not alter calling behavior or locomotor activity.
- Previously MXE-treated rats showed increased anxiety and impaired non-spatial memory in behavioral tests.
- Significant dopaminergic damage was observed in multiple brain areas, alongside serotonergic damage in the nucleus accumbens.
Conclusions:
- Repeated Methoxetamine (MXE) administration induces persistent behavioral abnormalities in rats, suggesting increased anxiety and memory deficits.
- This study provides the first in vivo evidence of MXE-induced neurotoxicity, particularly affecting dopaminergic pathways.
- Findings highlight potential neurological risks associated with human MXE use.
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