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Prior MDMA (Ecstasy) use is associated with increased basal ganglia-thalamocortical circuit activation during motor
John Karageorgiou1, Mary S Dietrich, Evonne J Charboneau
1Psychiatric Neuroimaging Program, Vanderbilt University School of Medicine, Nashville, TN 37072, USA.
Abstract:
MDMA (3,4-methylenedioxymethamphetamine; Ecstasy) is a popular recreational drug that produces long-lasting serotonin (5-HT) neurotoxicity consisting of reductions in markers for 5-HT axons. 5-HT innervates cortical and subcortical brain regions mediating motor function, predicting that MDMA users will have altered motor system neurophysiology. We used functional magnetic resonance imaging (fMRI) to assay motor task performance-associated brain activation changes in MDMA and non-MDMA users. 24 subjects (14 MDMA users and 10 controls) performed an event-related motor tapping task (1, 2 or 4 taps) during fMRI at 3 T. Motor regions of interest were used to measure percent signal change (PSC) and percent activated voxels (PAV) in bilateral motor cortex, sensory cortex, supplementary motor area (SMA), caudate, putamen, pallidum and thalamus. We used SPM5 to measure brain activation via three methods: T-maps, PSC and PAV. There was no statistically significant difference in reaction time between the two groups. For the Tap 4 condition, MDMA users had more activation than controls in the right SMA for T-score (p=0.02), PSC (p=0.04) and PAV (p=0.03). Lifetime episodes of MDMA use were positively correlated with PSC for the Tap 4 condition on the right for putamen and pallidum; with PAV in the right motor and sensory cortex and bilateral thalamus. In conclusion, we found a group difference in the right SMA and positive dose-response association between lifetime exposure to MDMA and signal magnitude and extent in several brain regions. This evidence is consistent with MDMA-induced alterations in basal ganglia-thalamocortical circuit neurophysiology and is potentially secondary to neurotoxic effects on 5-HT signaling. Further studies examining behavioral correlates and the specific neurophysiological basis of the observed findings are warranted.
Insights
Recreational drug MDMA (3,4-methylenedioxymethamphetamine) use is linked to altered brain activity in motor regions. This study found differences in the supplementary motor area and dose-dependent changes in brain activation in MDMA users.
Area of Science:
- Neuroscience
- Neuroimaging
- Psychopharmacology
Background:
- 3,4-methylenedioxymethamphetamine (MDMA) is known to cause long-lasting serotonin neurotoxicity.
- Serotonin pathways are crucial for motor function, suggesting potential motor system alterations in MDMA users.
Purpose of the Study:
- To investigate functional magnetic resonance imaging (fMRI) changes in motor task-related brain activation between MDMA users and non-users.
- To explore the relationship between lifetime MDMA exposure and neurophysiological alterations in motor circuits.
Main Methods:
- Functional magnetic resonance imaging (fMRI) was employed to assess brain activation during a motor tapping task.
- 24 participants (14 MDMA users, 10 controls) performed a 1, 2, or 4-tap task.
- Analysis focused on motor regions of interest, measuring percent signal change (PSC) and percent activated voxels (PAV).
Main Results:
- No significant difference in reaction time was observed between groups.
- MDMA users showed greater activation in the right supplementary motor area (SMA) for the 4-tap condition.
- Lifetime MDMA use correlated positively with PSC and PAV in motor, sensory, basal ganglia, and thalamic regions.
Conclusions:
- MDMA use is associated with altered neurophysiology in the right SMA.
- A dose-response relationship exists between lifetime MDMA exposure and brain activation magnitude and extent.
- Findings suggest MDMA-induced alterations in basal ganglia-thalamocortical circuits, potentially due to serotonin neurotoxicity.
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