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A General Method for Evaluating Deep Brain Stimulation Effects on Intravenous Methamphetamine Self-Administration
Published on: January 22, 2016
Iron chelation prevents nigrostriatal neurodegeneration in a chronic methamphetamine mice model
Shanshan Hu1, Xiaorong Huang1, Jian Huang2
1Good Clinical Practice Center, Affiliated Hospital of Zunyi Medical University, Zunyi 563000, China.
Abstract:
Methamphetamine (METH) has been established to selectively target and impair dopaminergic neurons through multiple pathways. Ferroptosis is a unique form of non-apoptotic cell death driven by cellular iron accumulation-induced lipid peroxidation. Nonetheless, it remains unclear whether METH can induce ferroptosis. In the present study, we sought to assess alterations in iron levels after chronic METH exposure and reveal the modulatory role of iron on METH-induced pathologies. Importantly, we demonstrated that METH increased iron deposition in the nigrostriatal system, including the substantia nigra (SN) and caudate putamen (CPu). Moreover, decreases in GPx4 levels, increases in lipid peroxidation products, and pathological alterations were observed in the nigrostriatal system as a consequence of chronic METH exposure. The iron chelator deferiprone not only alleviated nigrostriatal iron deposition, dopaminergic cell death, and lipid peroxidation, but alsoattenuated the decreases in GPx4 induced by METH. These findings suggest an alleviation of ferroptosis in dopaminergic neurons. In addition, we found that the ferroptosis inhibitor liproxstatin-1 attenuated METH-induced dopaminergic degeneration in the nigrostriatal system. Our findings corroborated that METH might induce dopaminergic neurodegeneration through iron-dependent ferroptosis. Interestingly, reducing iron levels or inhibiting ferroptosis may alleviate METH-induced dopaminergic neurodegeneration.
Insights
Methamphetamine (METH) causes iron buildup in the brain, leading to ferroptosis and dopaminergic neuron death. Reducing iron or inhibiting ferroptosis may protect against METH-induced neurodegeneration.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Methamphetamine (METH) damages dopaminergic neurons.
- Ferroptosis is iron-dependent cell death involving lipid peroxidation.
- The role of ferroptosis in METH neurotoxicity is not well understood.
Purpose of the Study:
- To investigate if METH induces ferroptosis in dopaminergic neurons.
- To assess the impact of METH on iron levels in the nigrostriatal system.
- To explore iron's role in METH-induced neurodegeneration.
Main Methods:
- Chronic METH exposure in a mouse model.
- Measurement of iron deposition, GPx4 levels, and lipid peroxidation.
- Administration of iron chelator deferiprone and ferroptosis inhibitor liproxstatin-1.
- Histological analysis of dopaminergic neurons in the substantia nigra (SN) and caudate putamen (CPu).
Main Results:
- METH increased iron deposition in the SN and CPu.
- METH exposure decreased GPx4 levels and increased lipid peroxidation.
- Deferiprone and liproxstatin-1 mitigated METH-induced dopaminergic neurodegeneration, iron deposition, and lipid peroxidation.
- These treatments also attenuated METH-induced GPx4 reduction.
Conclusions:
- METH induces dopaminergic neurodegeneration via iron-dependent ferroptosis.
- Iron accumulation and subsequent ferroptosis are key mechanisms in METH toxicity.
- Targeting iron levels or ferroptosis pathways may offer therapeutic strategies against METH-induced neurotoxicity.

