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Methylenedioxymethamphetamine inhibits mitochondrial complex I activity in mice: a possible mechanism underlying
Elena Puerta1, Isabel Hervias, Beatriz Goñi-Allo
1Department of Pharmacology, University of Navarra, Spain.
Background And Purpose:
3,4-methylenedioxymethamphetamine (MDMA) causes a persistent loss of dopaminergic cell bodies in the substantia nigra of mice. Current evidence indicates that such neurotoxicity is due to oxidative stress but the source of free radicals remains unknown. Inhibition of mitochondrial electron transport chain complexes by MDMA was assessed as a possible source.
Experimental Approach:
Activities of mitochondrial complexes after MDMA were evaluated spectrophotometrically. In situ visualization of superoxide production in the striatum was assessed by ethidium fluorescence and striatal dopamine levels were determined by HPLC as an index of dopaminergic toxicity.
Key Results:
3,4-methylenedioxymethamphetamine decreased mitochondrial complex I activity in the striatum of mice, an effect accompanied by an increased production of superoxide radicals and the inhibition of endogenous aconitase. alpha-Lipoic acid prevented superoxide generation and long-term toxicity independent of any effect on complex I inhibition. These effects of alpha-lipoic acid were also associated with a significant increase of striatal glutathione levels. The relevance of glutathione was supported by reducing striatal glutathione content with L-buthionine-(S,R)-sulfoximine, which exacerbated MDMA-induced dopamine deficits, effects suppressed by alpha-lipoic acid. The nitric oxide synthase inhibitor, N(G)-nitro-L-arginine, partially prevented MDMA-induced dopamine depletions, an effect reversed by L-arginine but not D-arginine. Finally, a direct relationship between mitochondrial complex I inhibition and long-term dopamine depletions was found in animals treated with MDMA in combination with 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine.
Conclusions And Implications:
Inhibition of mitochondrial complex I following MDMA could be the source of free radicals responsible for oxidative stress and the consequent neurotoxicity of this drug in mice.
Insights
3,4-methylenedioxymethamphetamine (MDMA) causes neurotoxicity by inhibiting mitochondrial complex I, leading to oxidative stress and dopamine cell loss. Alpha-lipoic acid mitigates this damage by boosting glutathione levels.
Area of Science:
- Neuroscience
- Toxicology
- Biochemistry
Background:
- 3,4-methylenedioxymethamphetamine (MDMA) induces persistent dopaminergic neurotoxicity in mice.
- This neurotoxicity is linked to oxidative stress, but the free radical source is unknown.
- Mitochondrial electron transport chain inhibition is investigated as a potential source.
Purpose of the Study:
- To assess MDMA's impact on mitochondrial electron transport chain complexes.
- To identify the source of free radicals causing MDMA neurotoxicity.
- To evaluate the neuroprotective effects of alpha-lipoic acid.
Main Methods:
- Spectrophotometric analysis of mitochondrial complex activities post-MDMA.
- In situ superoxide production assessment using ethidium fluorescence.
- High-performance liquid chromatography (HPLC) for striatal dopamine level determination.
Main Results:
- MDMA decreased mitochondrial complex I activity, increasing superoxide radicals and inhibiting aconitase.
- Alpha-lipoic acid prevented MDMA-induced superoxide generation and toxicity, independent of complex I.
- Glutathione levels were increased by alpha-lipoic acid; its depletion exacerbated MDMA toxicity.
Conclusions:
- MDMA's inhibition of mitochondrial complex I is a likely source of free radicals.
- This oxidative stress leads to neurotoxicity in the dopaminergic system.
- Alpha-lipoic acid shows potential as a neuroprotective agent against MDMA toxicity.
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