Differential long-term effects of MDMA on the serotoninergic system and hippocampal cell proliferation in 5-HTT knock-out vs. wild-type mice
Thibault Renoir, Eleni Païzanis, Malika El Yacoubi, Françoise Saurini, Naı̈ma Hanoun, Maxette Melfort, Klaus‐peter Lesch, M. Hamon, Laurence Lanfumey
The International Journal of Neuropsychopharmacology July 9, 2008 DOI: 10.1017/s1461145708009048 via OpenAlex
Summary
AI-generated from the abstractA single sentence summary is not possible because the abstract contains multiple distinct findings. Four weeks after administering MDMA to mice, the potency of a 5-HT1A receptor agonist to inhibit serotonin neuron firing in the dorsal raphe nucleus doubled, and the hypothermic response to 8-OH-DPAT increased, indicating supersensitivity of 5-HT1A autoreceptors. Brain serotonin levels decreased without changes in citalopram binding. MDMA treatment also reduced hippocampal cell proliferation by 30% and increased immobility in the forced swim test, suggesting depressive-like behavior. These effects were absent in mice lacking the serotonin transporter, indicating the transporter is required for these delayed, antidepressant-opposite effects that may contribute to MDMA-induced mood disorders.
Study at a glance
| Characteristics | Experimental study with in-vitro and in-vivo approaches Peer reviewed |
|---|---|
| Population | 5-HTT wild-type and knock-out mice |
| Intervention | MDMA |
| Dose | 20 mg/kg b.i.d for 4 d |
| Duration | 4-week post-treatment assessment |
| Topics | MDMA Serotonin |
| Keywords | Autoreceptor Chemistry Agonist |
| Citations | 58 |
| Key finding | MDMA administration in mice induced delayed adaptive supersensitivity of 5-HT1A autoreceptors in the dorsal raphe nucleus, a deficit in hippocampal cell proliferation, and depressive-like behavior, all dependent on the serotonin transporter. |
Abstract
Although numerous studies investigated the mechanisms underlying 3,4-methylenedioxymethamphetamine (MDMA)-induced neurotoxicity, little is known about its long-term functional consequences on 5-HT neurotransmission in mice. This led us to evaluate the delayed effects of MDMA exposure on the 5-HT system, using in-vitro and in-vivo approaches in both 5-HTT wild-type and knock-out mice. Acute MDMA in-vitro application on slices of the dorsal raphe nucleus (DRN) induced concentration-dependent 5-HT release and 5-HT cell firing inhibition. Four weeks after MDMA administration (20 mg/kg b.i.d for 4 d), a 2-fold increase in the potency of the 5-HT1A receptor agonist ipsapirone to inhibit the discharge of DRN 5-HT neurons and a larger hypothermic response to 8-OH-DPAT were observed in MDMA- compared to saline-treated mice. This adaptive 5-HT1A autoreceptor supersensitivity was associated with decreases in 5-HT levels but no changes of [3H]citalopram binding in brain. Long-term MDMA treatment also induced a 30% decrease in BrdU labelling of proliferating hippocampal cells and an increased immobility duration in the forced swim test suggesting a depressive-like behaviour induced by MDMA treatment. All these effects were abolished in 5-HTT-/- knock-out mice. These data indicated that, in mice, MDMA administration induced a delayed adaptive supersensitivity of 5-HT1A autoreceptors in the DRN, a deficit in hippocampal cell proliferation and a depressive-like behaviour. These 5-HTT-dependent effects, opposite to those of antidepressants, might contribute to MDMA-induced mood disorders.