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Author Spotlight: Establishing a New Fluorescence-Based Protocol for In Vivo Mitochondrial Morphology Analysis in Parkinson's Disease
Published on: June 23, 2023
Intracellular magnesium level determines cell viability in the MPP(+) model of Parkinson's disease
Yutaka Shindo1, Ryu Yamanaka1, Koji Suzuki2
1Department of Bioscience and Informatics, Faculty of Science and Technology, Keio University, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama, Kanagawa 223-8522, Japan.
Abstract:
Parkinson's disease (PD) is a neurodegenerative disorder resulting from mitochondrial dysfunction in dopaminergic neurons. Mitochondria are believed to be responsible for cellular Mg²⁺ homeostasis. Mg²⁺ is indispensable for maintaining ordinal cellular functions, hence perturbation of the cellular Mg²⁺ homeostasis may be responsible for the disorders of physiological functions and diseases including PD. However, the changes in intracellular Mg²⁺ concentration ([Mg²⁺]i) and the role of Mg²⁺ in PD have still been obscure. In this study, we investigated [Mg²⁺]i and its effect on neurodegeneration in the 1-methyl-4-phenylpyridinium (MPP⁺) model of PD in differentiated PC12 cells. Application of MPP⁺ induced an increase in [Mg²⁺]i immediately via two different pathways: Mg²⁺ release from mitochondria and Mg²⁺ influx across cell membrane, and the increased [Mg²⁺]i sustained for more than 16 h after MPP⁺ application. Suppression of Mg²⁺ influx decreased the viability of the cells exposed to MPP⁺. The cell viability correlated highly with [Mg²⁺]i. In the PC12 cells with suppressed Mg²⁺ influx, ATP concentration decreased and the amount of reactive oxygen species (ROS) increased after an 8h exposure to MPP⁺. Our results indicate that the increase in [Mg²⁺]i inhibited cellular ROS generation and maintained ATP production, which resulted in the protection from MPP⁺ toxicity.
Insights
Magnesium ions (Mg²⁺) play a protective role in Parkinson's disease (PD) by increasing intracellular Mg²⁺ concentration ([Mg²⁺]i). This increase inhibits reactive oxygen species (ROS) and maintains ATP production, crucial for cell survival in PD models.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Parkinson's disease (PD) is linked to mitochondrial dysfunction and impaired cellular Mg²⁺ homeostasis.
- The precise role of intracellular Mg²⁺ concentration ([Mg²⁺]i) in PD pathogenesis remains unclear.
Purpose of the Study:
- To investigate the changes in [Mg²⁺]i and its neuroprotective effects in a cellular model of Parkinson's disease.
Main Methods:
- Utilized the 1-methyl-4-phenylpyridinium (MPP⁺) to induce Parkinson's-like neurodegeneration in differentiated PC12 cells.
- Measured intracellular Mg²⁺ concentration ([Mg²⁺]i) and assessed cell viability, ATP levels, and reactive oxygen species (ROS) production.
Main Results:
- MPP⁺ application caused a rapid and sustained increase in [Mg²⁺]i through mitochondrial release and cell membrane influx.
- Suppression of Mg²⁺ influx reduced cell viability, decreased ATP levels, and increased ROS generation in MPP⁺-treated cells.
- Elevated [Mg²⁺]i correlated with enhanced cell viability, reduced ROS, and maintained ATP production.
Conclusions:
- The increase in [Mg²⁺]i is a protective mechanism against MPP⁺-induced neurotoxicity in dopaminergic cells.
- Mg²⁺ homeostasis is critical for cellular function and survival in the context of Parkinson's disease.

