Methiopropamine, a methamphetamine analogue, produces neurotoxicity via dopamine receptors
Phuong-Tram Nguyen1, Duy-Khanh Dang2, Hai-Quyen Tran1
1Neuropsychopharmacology and Toxicology Program, College of Pharmacy, Kangwon National University, Chunchon, 24341, Republic of Korea.
Abstract:
Methiopropamine (MPA) is structurally categorized as a thiophene ring-based methamphetamine (MA) derivative. Although abusive potential of MPA was recognized, little is known about the neurotoxic potential of MPA up to now. We investigated whether MPA induces dopaminergic neurotoxicity, and whether MPA activates a specific dopamine receptor. Here, we observed that treatment with MPA resulted in dopaminergic neurotoxicity in a dose-dependent manner. MPA treatment potentiated oxidative parameters (i.e., increases in the level of reactive oxygen species, 4-hydroxynonenal, and protein carbonyl), M1 phenotype-related microglial activity, and pro-apoptotic property (i.e., increases in Bax- and cleaved caspase-3-expressions, while a decrease in Bcl-2-expression). Moreover, treatment with MPA resulted in significant impairments in dopaminergic parameters [i.e., changes in dopamine level, dopamine turnover rate, tyrosine hydroxylase (TH) levels, dopamine transporter (DAT) expression, and vesicular monoamine transporter-2 (VMAT-2) expression], and in behavioral deficits. Both dopamine D1 receptor antagonist SCH23390 and D2 receptor antagonist sulpiride protected from these neurotoxic consequences. Therefore, our results suggest that dopamine D1 and D2 receptors simultaneously mediate MPA-induced dopaminergic neurodegeneration in mice via oxidative burdens, microgliosis, and pro-apoptosis.
Insights
Methiopropamine (MPA) causes dopaminergic neurotoxicity by increasing oxidative stress and activating microglia. Dopamine D1 and D2 receptors mediate this neurodegeneration, highlighting potential therapeutic targets.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Methiopropamine (MPA), a methamphetamine derivative, has recognized abuse potential.
- Limited research exists on MPA's neurotoxic effects.
Purpose of the Study:
- To investigate if MPA induces dopaminergic neurotoxicity.
- To determine if MPA activates specific dopamine receptors.
Main Methods:
- MPA administration to mice.
- Assessment of oxidative stress markers (ROS, 4-HNE, protein carbonyls).
- Evaluation of microglial activation (M1 phenotype).
- Analysis of apoptosis markers (Bax, Bcl-2, cleaved caspase-3).
- Measurement of dopaminergic parameters (dopamine, TH, DAT, VMAT-2).
- Behavioral testing.
- Administration of dopamine D1 and D2 receptor antagonists (SCH23390, sulpiride).
Main Results:
- MPA induced dose-dependent dopaminergic neurotoxicity.
- MPA increased oxidative stress, M1 microgliosis, and apoptosis.
- MPA impaired dopaminergic parameters and caused behavioral deficits.
- Dopamine D1 and D2 receptor antagonists protected against MPA-induced neurotoxicity.
Conclusions:
- MPA causes dopaminergic neurodegeneration through oxidative stress, microgliosis, and apoptosis.
- Dopamine D1 and D2 receptors mediate MPA-induced neurotoxicity.
- Blocking dopamine D1 and D2 receptors may mitigate MPA neurotoxicity.
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