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Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Oxidative stress and mitochondrial dynamics malfunction are linked in Pelizaeus-Merzbacher disease
Montserrat Ruiz1,2, Mélina Bégou3,4, Nathalie Launay1,2
1Neurometabolic Diseases Laboratory, Bellvitge Biomedical Research Institute (IDIBELL), 08908 L'Hospitalet de Llobregat, Barcelona, Spain.
Abstract:
Pelizaeus-Merzbacher disease (PMD) is a fatal hypomyelinating disorder characterized by early impairment of motor development, nystagmus, choreoathetotic movements, ataxia and progressive spasticity. PMD is caused by variations in the proteolipid protein gene PLP1, which encodes the two major myelin proteins of the central nervous system, PLP and its spliced isoform DM20, in oligodendrocytes. Large duplications including the entire PLP1 gene are the most frequent causative mutation leading to the classical form of PMD. The Plp1 overexpressing mouse model (PLP-tg66/66 ) develops a phenotype very similar to human PMD, with early and severe motor dysfunction and a dramatic decrease in lifespan. The sequence of cellular events that cause neurodegeneration and ultimately death is poorly understood. In this work, we analyzed patient-derived fibroblasts and spinal cords of the PLP-tg66/66 mouse model, and identified redox imbalance, with altered antioxidant defense and oxidative damage to several enzymes involved in ATP production, such as glycolytic enzymes, creatine kinase and mitochondrial proteins from the Krebs cycle and oxidative phosphorylation. We also evidenced malfunction of the mitochondria compartment with increased ROS production and depolarization in PMD patient's fibroblasts, which was prevented by the antioxidant N-acetyl-cysteine. Finally, we uncovered an impairment of mitochondrial dynamics in patient's fibroblasts which may help explain the ultrastructural abnormalities of mitochondria morphology detected in spinal cords from PLP-tg66/66 mice. Altogether, these results underscore the link between redox and metabolic homeostasis in myelin diseases, provide insight into the pathophysiology of PMD, and may bear implications for tailored pharmacological intervention.
Insights
Pelizaeus-Merzbacher disease (PMD) involves redox imbalance and mitochondrial dysfunction. Antioxidant treatment shows promise for this fatal hypomyelinating disorder.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Pelizaeus-Merzbacher disease (PMD) is a fatal hypomyelinating disorder caused by mutations in the proteolipid protein gene PLP1.
- The PLP-tg66/66 mouse model mimics human PMD, exhibiting severe motor dysfunction and reduced lifespan.
- The precise cellular mechanisms leading to neurodegeneration in PMD remain unclear.
Purpose of the Study:
- To investigate the cellular events underlying neurodegeneration in PMD.
- To analyze redox balance, mitochondrial function, and dynamics in PMD patient cells and mouse models.
Main Methods:
- Analysis of patient-derived fibroblasts and spinal cords from the PLP-tg66/66 mouse model.
- Assessment of antioxidant defense, oxidative damage, and mitochondrial parameters (ROS production, membrane potential).
- Evaluation of mitochondrial dynamics and morphology.
Main Results:
- Identified redox imbalance with compromised antioxidant defenses and oxidative damage to ATP-producing enzymes.
- Observed mitochondrial dysfunction, including increased ROS production and depolarization, in PMD fibroblasts.
- Demonstrated impaired mitochondrial dynamics in PMD fibroblasts, correlating with observed morphological abnormalities in mouse spinal cords.
- Showed that N-acetyl-cysteine could prevent mitochondrial dysfunction in PMD fibroblasts.
Conclusions:
- Redox and metabolic homeostasis are critically linked in myelin disorders like PMD.
- Mitochondrial dysfunction and impaired dynamics contribute significantly to PMD pathophysiology.
- Findings suggest potential therapeutic strategies targeting redox and metabolic pathways for PMD treatment.
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