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Published on: November 14, 2012
Persistent cerebrovascular effects of MDMA and acute responses to the drug
Linda Ferrington1, Eszter Kirilly, Douglas E McBean
1Division of Neuroscience, University of Edinburgh, 1 George Square, Edinburgh EH8 9JZ, UK. linda.ferrington@ed.ac.uk
Abstract:
Acutely, 3,4,-methylenedioxymethamphetamine (MDMA) induces cerebrovascular dysfunction [Quate et al., (2004)Psychopharmacol., 173, 287-295]. In the longer term the same single dose results in depletion of 5-hydroxytrptamine (5-HT) nerve terminals. In this study we examined the cerebrovascular consequences of this persistent neurodegeneration, and the acute effects of subsequent MDMA exposure, upon the relationship that normally exists between local cerebral blood flow (LCBF) and local cerebral glucose utilization (LCMRglu). Dark agouti (DA) rats were pre-treated with 15 mg/kg i.p. MDMA or saline. Three weeks later, rats from each pre-treatment group were treated with an acute dose of MDMA (15 mg/kg i.p.) or saline. Quantitative autoradiographic imaging was used to measure LCBF or LCMRglu with [(14)C]-iodoantipyrine and [(14)C]-2-deoxyglucose, respectively. Serotonergic terminal depletion was assessed using radioligand binding with [(3)H]-paroxetine and immunohistochemistry. Three weeks after MDMA pre-treatment there were significant reductions in densities of 5-HT transporter (SERT)-positive fibres (-46%) and [(3)H]-paroxetine binding (-47%). In animals pre-treated with MDMA there were widespread significant decreases in LCMRglu, but no change in LCBF indicating a persistent loss of cerebrovascular constrictor tone. In both pre-treatment groups, acute MDMA produced significant increases in LCMRglu, while LCBF was significantly decreased. In 50% of MDMA-pre-treated rats, random areas of focal hyperaemia indicated a loss of autoregulatory capacity in response to MDMA-induced hypertension. These results suggest that cerebrovascular regulatory dysfunction resulting from acute exposure to MDMA is not diminished by previous exposure, despite a significant depletion in 5-HT terminals. However, there may be a sub-population, or individual circumstances, in which this dysfunction develops into a condition that might predispose to stroke.
Insights
Repeated exposure to MDMA causes persistent cerebrovascular dysfunction and impaired blood flow regulation, even after serotonin nerve terminals deplete. This may increase stroke risk in susceptible individuals.
Area of Science:
- Neuroscience
- Pharmacology
- Cerebrovascular Research
Background:
- Acute 3,4,-methylenedioxymethamphetamine (MDMA) causes cerebrovascular dysfunction.
- MDMA also causes long-term depletion of serotonin (5-HT) nerve terminals.
- The relationship between cerebral blood flow (LCBF) and glucose utilization (LCMRglu) is critical for brain function.
Purpose of the Study:
- To investigate the cerebrovascular effects of persistent neurodegeneration caused by MDMA.
- To examine the acute effects of subsequent MDMA exposure on LCBF and LCMRglu.
- To assess the impact of MDMA pre-treatment on cerebrovascular regulatory mechanisms.
Main Methods:
- Dark agouti rats were pre-treated with MDMA or saline.
- Three weeks later, rats received a second dose of MDMA or saline.
- Quantitative autoradiography measured LCBF and LCMRglu; radioligand binding and immunohistochemistry assessed serotonergic terminals.
Main Results:
- MDMA pre-treatment significantly reduced 5-HT transporter (SERT) and [(3)H]-paroxetine binding.
- Pre-treated animals showed decreased LCMRglu but unchanged LCBF, indicating loss of cerebrovascular tone.
- Acute MDMA increased LCMRglu and decreased LCBF; 50% of pre-treated rats exhibited impaired autoregulation.
Conclusions:
- MDMA-induced cerebrovascular dysfunction persists despite 5-HT terminal depletion.
- Previous MDMA exposure does not diminish acute cerebrovascular regulatory dysfunction.
- This dysfunction may predispose a sub-population to stroke due to impaired autoregulation.
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