Multi-Omics Approach to Mitochondrial DNA Damage in Human Muscle Fibers

Matthias Elstner1, Konrad Olszewski2, Holger Prokisch3,4

  • 1Department of Neurology, Technical University Munich, 81675 Munich, Germany.

Insights

Mitochondrial DNA deletions in chronic progressive external ophthalmoplegia (CPEO) cause muscle fiber defects. This study reveals molecular differences in affected cells, highlighting pathways involved in protein synthesis and cell death, crucial for understanding disease progression.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cell Biology

Background:

  • Mitochondrial DNA (mtDNA) deletions disrupt cellular energy metabolism, but the mechanisms driving cell fate are unclear.
  • Chronic progressive external ophthalmoplegia (CPEO) results from mtDNA deletions, presenting as a mosaic of muscle fibers with and without functional respiratory chain activity.
  • Understanding the molecular basis of cell fate in response to mtDNA deletions is critical for developing therapeutic strategies.

Purpose of the Study:

  • To investigate the molecular differences between muscle fibers with and without cytochrome oxidase (COX) activity in CPEO patients.
  • To identify key molecular pathways and mechanisms contributing to the pathogenesis of mitochondrial deletion syndromes.
  • To provide a comprehensive multi-omics resource for studying respiratory chain deficiency.

Main Methods:

  • Diagnostic histochemistry to differentiate COX-negative and COX-positive muscle fibers.
  • Laser capture microdissection (LCM) for isolating specific fiber types.
  • Genome-wide gene expression analysis (transcriptomics) and integration with prior proteomics data.
  • Network and pathway analysis to interpret molecular differences.

Main Results:

  • COX-negative fibers exhibit upregulated transcripts related to translational elongation and protein synthesis.
  • Mitochondrial transcripts are significantly enriched among differentially expressed genes, pinpointing core pathogenic changes.
  • Enrichments also observed in pathways for LIM domain proteins, ubiquitin ligases, RNA turnover, cell cycle arrest, and cell death.
  • Low correlation between transcriptome and proteome suggests significant post-transcriptional regulation.

Conclusions:

  • The study identifies key molecular alterations in COX-negative fibers, offering insights into CPEO pathogenesis.
  • Upregulation of protein synthesis and involvement of cell death pathways are implicated in disease progression.
  • Post-transcriptional mechanisms play a crucial role in shaping the disease phenotype in mitochondrial deletion syndromes.