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.

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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