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

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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