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In-vitro Approaches to Investigate the Detrimental Effect of Light on Dopaminergic Neurons
Irene Fasciani1, Francesco Petragnano1, Federica Bono2
1Department of Biotechnological and Applied Clinical Sciences, University of L'Aquila, 67100 L'Aquila, Italy.
Abstract:
Our recent study revealed that fluorescent lamp light can penetrate deep into the brain of mice and rats leading to the development of typical histological characteristics associated with Parkinson's disease such as the loss of dopamine neurons in the substantia nigra. Monochromatic LED lights were thus used in this work to deepen our knowledge on the effects of the major wavelength peaks of fluorescent light on mouse and human dopaminergic cells. In particular, we exposed immortalized dopaminergic MN9D neuronal cells, primary cultures of mouse mesencephalic dopaminergic cells and human dopaminergic neurons differentiated from induced pluripotent stem cells (hiPSC) to different LED light wavelengths. We found that chronic exposure to LED light reduced overall undifferentiated MN9D cell number, with the most significant effects observed at wavelengths of 485 nm and 610 nm. Moreover, LED light especially at 610 nm was able to negatively impact on the survival of mouse mesencephalic dopaminergic cells and of human dopaminergic neurons derived from hiPSC. Notably, differentiated MN9D dopaminergic cells, which closely resemble mature dopamine neuronal phenotype, acutely exposed for 3 h at 610 nm, showed a clear increase in ROS production and cytotoxicity compared to controls undifferentiated MN9D cells. These increases were even more pronounced by the co-treatment with the oxidative agent H2O2. Collectively, these findings suggest that specific wavelengths, particularly those capable of penetrating deep into the brain, could potentially pose an environmental hazard in relation to Parkinson's disease.
Insights
Fluorescent light exposure may harm dopamine cells, potentially increasing Parkinson's disease risk. Specific LED wavelengths (485 nm, 610 nm) showed significant negative impacts on mouse and human dopaminergic cells.
Area of Science:
- Neuroscience
- Cell Biology
- Environmental Health
Background:
- Fluorescent light penetrates the brain, inducing Parkinson's-like changes in rodents.
- Understanding light wavelength effects on dopaminergic cells is crucial for assessing environmental risks.
Purpose of the Study:
- To investigate the impact of specific LED light wavelengths on mouse and human dopaminergic cells.
- To determine the effects of monochromatic light on neuronal cell survival and function.
Main Methods:
- Exposure of immortalized MN9D cells, primary mouse mesencephalic cultures, and human induced pluripotent stem cell-derived neurons to various LED wavelengths.
- Assessment of cell viability, proliferation, and reactive oxygen species (ROS) production.
Main Results:
- Chronic LED exposure reduced MN9D cell numbers, with notable effects at 485 nm and 610 nm.
- 610 nm LED light significantly impaired survival of mouse and human dopaminergic cells.
- Acute 610 nm exposure increased ROS production and cytotoxicity in differentiated MN9D cells, exacerbated by H2O2.
Conclusions:
- Specific light wavelengths, particularly 610 nm, negatively affect dopaminergic cell health.
- These findings suggest a potential environmental hazard linked to light exposure and Parkinson's disease risk.
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