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3,4-Methylenedioxymethamphetamine (MDMA) neurotoxicity in rats: a reappraisal of past and present findings

Michael H. Baumann, Xiaoying Wang, Richard B. Rothman

Psychopharmacology March 15, 2006 DOI: 10.1007/s00213-006-0322-6 via OpenAlex

Summary

AI-generated from the abstract

High doses of MDMA (ecstasy) reduce serotonin levels in the brains of rats, but this reduction does not necessarily indicate that neurons have been damaged. The drug works by stimulating the release of serotonin, norepinephrine, and dopamine. At doses that cause long-term serotonin depletion (10-20 mg/kg), markers of actual neuronal damage such as cell death or gliosis are not reliably increased. Even moderate doses that do not deplete serotonin can produce lasting anxiety-like behaviors in rats, suggesting potential risks from the drug beyond neurotoxicity.

Study at a glance

Characteristics Review Peer reviewed
Population Rats
Topics MDMA Serotonin
Keywords Neurotoxicity Neurochemical Pharmacology
Citations 269
Key finding MDMA-induced serotonin depletions in rats are not synonymous with neurotoxic damage, but even moderate doses that do not deplete serotonin can have persistent behavioral effects.

Abstract

RATIONALE: 3,4-Methylenedioxymethamphetamine (MDMA) is a widely abused illicit drug. In animals, high-dose administration of MDMA produces deficits in serotonin (5-HT) neurons (e.g., depletion of forebrain 5-HT) that have been interpreted as neurotoxicity. Whether such 5-HT deficits reflect neuronal damage is a matter of ongoing debate. OBJECTIVE: The present paper reviews four specific issues related to the hypothesis of MDMA neurotoxicity in rats: (1) the effects of MDMA on monoamine neurons, (2) the use of "interspecies scaling" to adjust MDMA doses across species, (3) the effects of MDMA on established markers of neuronal damage, and (4) functional impairments associated with MDMA-induced 5-HT depletions. RESULTS: MDMA is a substrate for monoamine transporters, and stimulated release of 5-HT, NE, and DA mediates effects of the drug. MDMA produces neurochemical, endocrine, and behavioral actions in rats and humans at equivalent doses (e.g., 1-2 mg/kg), suggesting that there is no reason to adjust doses between these species. Typical doses of MDMA causing long-term 5-HT depletions in rats (e.g., 10-20 mg/kg) do not reliably increase markers of neurotoxic damage such as cell death, silver staining, or reactive gliosis. MDMA-induced 5-HT depletions are accompanied by a number of functional consequences including reductions in evoked 5-HT release and changes in hormone secretion. Perhaps more importantly, administration of MDMA to rats induces persistent anxiety-like behaviors in the absence of measurable 5-HT deficits. CONCLUSIONS: MDMA-induced 5-HT depletions are not necessarily synonymous with neurotoxic damage. However, doses of MDMA which do not cause long-term 5-HT depletions can have protracted effects on behavior, suggesting even moderate doses of the drug may pose risks.

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