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Updated: Jul 25, 2026

Single Cell Measurement of Dopamine Release with Simultaneous Voltage-clamp and Amperometry
Published on: November 21, 2012
Enkephalin contributes to the locomotor stimulating effects of 3,4-methylenedioxy-N-methylamphetamine
V Compan1, K Scearce-Levie, C Crosson
1Columbia University, Center for Neurobiology and Behaviour, N.Y.S.P.I. Kolb Research Annex, Room 732, 1051 Riverside Drive, Unit 87, New York, NY 10032-2695, USA. Valerie.Compan@ccipe.cnrs.fr
Abstract:
3,4-methylenedioxy-N-methylamphetamine (MDMA, 'Ecstasy') is a potent inhibitor of serotonin uptake, which induces both an increase in locomotion and a decrease in exploratory activity in rodents. Serotonin 5-HT1B receptors, located on the terminals of striatal efferent neurons, have been suggested to mediate these motor effects of MDMA. Striatal neurons projecting to the globus pallidus contain met-enkephalin, whilst those projecting to the substantia nigra contain substance P. We therefore analysed the levels of both peptides using radioimmunocytochemistry after MDMA administration (10 mg/kg, 3 h) in wild-type and 5-HT1B receptor knockout mice. Our results demonstrate that MDMA induces a decrease in pallidal met-enkephalin immunolabelling in wild-type, but not in 5-HT1B receptor knockout mice. Similar results were obtained following treatment with the 5-HT1A/1B agonist RU24969 (5 mg/kg, 3 h), suggesting that activation of 5-HT1B receptors leads to a reduction in met-enkephalin levels in the globus pallidus. In contrast, MDMA had no effect on the nigral substance P levels. We have previously shown that both MDMA and RU24969 fail to stimulate locomotor activity in 5-HT1B receptor knockout mice. Our present data indicate that the opioid antagonist naloxone suppressed the locomotor effects of MDMA. This study is the first to demonstrate that Enk contributes to MDMA-induced increases in locomotor activity. Such an effect may be related to the 5-HT control of pallidal met-enkephalin levels via the 5-HT1B receptors.
Insights
3,4-methylenedioxy-N-methylamphetamine (MDMA) increases locomotion by affecting serotonin 5-HT1B receptors. This study shows MDMA reduces met-enkephalin in the globus pallidus, a key motor pathway, via these receptors.
Area of Science:
- Neuroscience
- Pharmacology
- Neurochemistry
Background:
- 3,4-methylenedioxy-N-methylamphetamine (MDMA) is a serotonin uptake inhibitor impacting rodent locomotion.
- Serotonin 5-HT1B receptors are implicated in mediating MDMA's motor effects.
- Striatal efferent neurons project to the globus pallidus (met-enkephalin) and substantia nigra (substance P).
Purpose of the Study:
- To investigate the role of 5-HT1B receptors in MDMA-induced motor activity.
- To examine the effect of MDMA on met-enkephalin and substance P levels in specific brain regions.
- To determine the contribution of met-enkephalin to MDMA's locomotor effects.
Main Methods:
- Administration of MDMA and RU24969 to wild-type and 5-HT1B receptor knockout mice.
- Radioimmunocytochemistry to quantify met-enkephalin and substance P levels.
- Assessment of locomotor activity and blockade with naloxone.
Main Results:
- MDMA decreased pallidal met-enkephalin in wild-type but not knockout mice.
- The 5-HT1A/1B agonist RU24969 mimicked MDMA's effect on met-enkephalin.
- MDMA did not affect nigral substance P levels.
- Naloxone suppressed MDMA-induced locomotor activity.
Conclusions:
- 5-HT1B receptor activation reduces met-enkephalin levels in the globus pallidus.
- Met-enkephalin contributes to MDMA-induced increases in locomotor activity.
- This suggests a role for 5-HT control of pallidal met-enkephalin via 5-HT1B receptors in MDMA's motor effects.
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