Related Experiment Video
Updated: Jun 8, 2026

Gene-environment Interaction Models to Unmask Susceptibility Mechanisms in Parkinson's Disease
Published on: January 7, 2014
Iron mediates neuritic tree collapse in mesencephalic neurons treated with 1-methyl-4-phenylpyridinium (MPP+)
Francisco J Gómez1, Pabla Aguirre, Christian Gonzalez-Billault
1Department of Biology, Faculty of Sciences, Cell Dynamics and Biotechnology Institute, Universidad de Chile, Santiago, Chile.
Abstract:
Studies in post-mortem tissues of patients with Parkinson's disease (PD) and in mice treated with 6-hydroxydopamine have shown a decrease in the length of axon and dendrites of striatal neurons. However, the etiology of the morphological changes and their relationship to inhibition of mitochondrial complex I and the cellular levels of iron and glutathione (GSH) have not been described. In this study, we characterized the effect of MPP+, an inhibitor of mitochondria complex I, on the integrity of the neuritic tree of midbrain dopaminergic neurons, and determined the influence of iron and cellular levels of GSH on this degeneration. Sub-maximal concentrations of MPP+ induced a drastic dose-dependent reduction of neurites, without modification of the soma or apparent cell death. Concurrent treatment with MPP+ and non-toxic concentrations of iron accelerated the process of degeneration, whereas neurons grown on a medium low in iron showed enhanced resistance to MPP+ treatment. MPP+-induced neurite shortening depended on the redox state of neurons. Pre-treatment with the general antioxidant N-acetyl cysteine protected neurons from degeneration. Treatment with sub-maximal concentrations of the inhibitor of GSH synthesis buthionine sulfoximine (BSO), in conjunction with iron and MPP+, produced massive cell death, whereas treatment with BSO plus MPP+ under low iron conditions did not damage neurons. These results suggest that under conditions of inhibition of mitochondrial complex I caused by MPP+, the accumulation of iron and the concurrent decrease in GSH results in the loss of the dendritic tree prior to cell death, of dopaminergic neurons in PD.
Insights
Parkinson's disease involves neurite loss in dopaminergic neurons. Iron accumulation and decreased glutathione (GSH) exacerbate this degeneration when mitochondrial complex I is inhibited, preceding cell death.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Parkinson's disease (PD) is linked to neurite degeneration in striatal neurons.
- The precise causes of these morphological changes, especially concerning mitochondrial function, iron, and glutathione (GSH), remain unclear.
Purpose of the Study:
- To investigate the impact of MPP+, a mitochondrial complex I inhibitor, on dopaminergic neuron neurites.
- To determine the roles of iron and GSH levels in MPP+-induced neurodegeneration.
Main Methods:
- Midbrain dopaminergic neurons were treated with MPP+ at varying concentrations.
- Experiments involved manipulating iron levels and GSH synthesis (using buthionine sulfoximine - BSO).
- Antioxidant N-acetyl cysteine was used for protective effect assessment.
Main Results:
- MPP+ caused dose-dependent neurite reduction without significant cell death.
- Iron accelerated MPP+-induced degeneration, while low iron conferred resistance.
- N-acetyl cysteine protected neurons; BSO combined with iron and MPP+ induced cell death, but not under low iron conditions.
Conclusions:
- MPP+-induced mitochondrial complex I inhibition, coupled with iron accumulation and decreased GSH, leads to neuritic tree loss before cell death in dopaminergic neurons.
- These findings offer insights into the pathogenesis of Parkinson's disease.
