Bulk autophagy, but not mitophagy, is increased in cellular model of mitochondrial disease

María Morán1, Aitor Delmiro1, Alberto Blázquez1

  • 1Mitochondrial and Neuromuscular Diseases Laboratory, Hospital Universitario 12 de Octubre Research Institute (i+12), Madrid, Spain; Spanish Network for Biomedical Research in Rare Diseases (CIBERER), U723, Spain.

Insights

Oxidative phosphorylation system (OXPHOS) deficiencies show increased bulk autophagy but hampered autophagic flux in fibroblasts. This leads to accumulation of autophagic vacuoles and lysosomes, impacting cellular waste removal in these rare metabolic diseases.

Area of Science:

  • Cell Biology
  • Metabolic Disorders
  • Mitochondrial Diseases

Background:

  • Oxidative phosphorylation system (OXPHOS) deficiencies are the most common inborn errors of metabolism.
  • Autophagy plays a crucial role in cellular homeostasis and the removal of damaged organelles.

Purpose of the Study:

  • To investigate the role of the autophagy pathway in fibroblasts from patients with OXPHOS deficiencies.
  • To determine if impaired mitochondrial function affects mitophagy and overall autophagic flux.

Main Methods:

  • Analysis of autophagy markers (LC3B) and lysosomal markers (LAMP-1) in patient-derived fibroblasts.
  • Mitochondrial membrane potential assessment and colocalization studies of mitochondria with autophagosomes.
  • Electron microscopy to examine autophagic vacuoles and lysosomal content.

Main Results:

  • Fibroblasts from OXPHOS-deficient patients showed increased levels of LC3B-II, indicating enhanced bulk autophagy.
  • Mitophagy was not significantly increased, but Parkin recruitment to mitochondria was observed.
  • Autophagic flux appeared partially hampered, with accumulation of late autophagic vacuoles and lysosomes (LAMP-1 positive).

Conclusions:

  • OXPHOS deficiencies are associated with altered autophagy dynamics in fibroblasts.
  • While bulk autophagy is upregulated, the efficient clearance of autophagosomes may be impaired, leading to lysosomal accumulation.
  • These findings highlight potential therapeutic targets for managing cellular dysfunction in OXPHOS disorders.

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