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Updated: Jan 30, 2026

Quantifying Levels of Dopaminergic Neuron Morphological Alteration and Degeneration in Caenorhabditis elegans
Published on: November 20, 2021
Spermine protects alpha-synuclein expressing dopaminergic neurons from manganese-induced degeneration
Bejoy Vijayan1, Vishnu Raj2, Swapna Nandakumar1
1Comprehensive Care Centre for Movement Disorders, Department of Neurology, Sree Chitra Tirunal Institute for Medical Sciences and Technology, Thiruvananthapuram, Kerala, India.
Abstract:
Manganese exposure is among the many environmental risk factors linked to the progression of neurodegenerative diseases, such as manganese-induced parkinsonism. In animal models, chronic exposure to manganese causes loss of cell viability, neurodegeneration, and functional deficits. Polyamines, such as spermine, have been shown to rescue animals from age-induced neurodegeneration in an autophagy-dependent manner; nonetheless, it is not understood whether polyamines can prevent manganese-induced toxicity. In this study, we used two model systems, the Caenorhabditis elegans UA44 strain and SK-MEL-28 cells, both expressing the protein alpha-synuclein (α-syn) to determine whether spermine could ameliorate manganese-induced toxicity. Manganese caused a substantial reduction in the viability of SK-MEL-28 cells and hastened neurodegeneration in the UA44 strain. Spermine protected both the SK-MEL-28 cells and the UA44 strain from manganese-induced toxicity. Spermine also reduced the age-associated neurodegeneration observed in the UA44 strain compared with a control strain without α-syn expression and led to improved avoidance behavior in a functional assay. Treatment with berenil, an inhibitor of polyamine catabolism, which leads to increased intracellular polyamine levels, also showed similar cellular protection against manganese toxicity. While both translation blocker cycloheximide and autophagy blocker chloroquine caused a reduction in the cytoprotective effect of spermine, transcription blocker actinomycin D had no effect. This study provides new insights on the effect of spermine in preventing manganese-induced toxicity, which is most likely via translational regulation of several candidate genes, including those of autophagy. Thus, our results indicate that polyamines positively influence neuronal health, even when exposed to high levels of manganese and α-syn, and supplementing polyamines through diet might delay the onset of diseases involving degeneration of dopaminergic neurons.
Insights
Polyamines like spermine protect against manganese toxicity and neurodegeneration by influencing gene translation and autophagy. Dietary polyamine supplementation may benefit neuronal health in conditions like Parkinson's disease.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Environmental factors like manganese exposure are linked to neurodegenerative diseases.
- Manganese toxicity causes cell death and neurodegeneration in animal models.
- Polyamines, such as spermine, show neuroprotective effects in age-related degeneration via autophagy.
Purpose of the Study:
- To investigate if spermine can prevent manganese-induced toxicity.
- To determine the protective mechanisms of spermine against manganese and alpha-synuclein toxicity.
Main Methods:
- Utilized Caenorhabditis elegans (UA44 strain) and SK-MEL-28 cells expressing alpha-synuclein.
- Assessed manganese toxicity effects on cell viability and neurodegeneration.
- Evaluated spermine's protective effects and its interaction with autophagy and translation inhibitors.
Main Results:
- Manganese exposure reduced cell viability and accelerated neurodegeneration.
- Spermine significantly protected cells and C. elegans from manganese toxicity.
- Spermine reduced age-associated neurodegeneration and improved behavioral function.
- Inhibiting polyamine catabolism with berenil mimicked spermine's protective effects.
- Spermine's protective effects were partially dependent on translation but not transcription or autophagy.
Conclusions:
- Polyamines, including spermine, offer protection against manganese-induced neurotoxicity.
- Spermine's mechanism likely involves translational regulation of genes, potentially including those related to autophagy.
- Dietary polyamine supplementation could be a strategy to support neuronal health and delay neurodegenerative diseases.
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