Multisystem mitochondrial diseases due to mutations in mtDNA-encoded subunits of complex I

Tereza Danhelovska1, Hana Kolarova1, Jiri Zeman1

  • 1Department of Pediatrics and Adolescent Medicine, First Faculty of Medicine, Charles University and General University Hospital in Prague, Ke Karlovu 2, 128 08 Praha 2, Prague, Czech Republic.

BMC Pediatrics
|January 31, 2020
PubMed
Abstract

Insights

Maternally inherited complex I deficiencies caused by MT-ND gene mutations lead to severe multisystem mitochondrial disorders. Early onset and high heteroplasmy correlate with a worse prognosis, highlighting the need for early diagnosis.

Area of Science:

  • Genetics
  • Mitochondrial Biology
  • Neurology

Background:

  • Maternally inherited complex I deficiencies, caused by mutations in MT-ND genes, are severe multisystem mitochondrial disorders.
  • These disorders often have an unfavorable prognosis, necessitating a deeper understanding of their genetic and molecular underpinnings.

Purpose of the Study:

  • To investigate the impact of MT-ND gene mutations, including a novel variant (m.13091 T>C), on mitochondrial disease progression.
  • To analyze respiratory chain complex activities, protein levels, and the mitochondrial energy-generating system (MEGS) in affected individuals.

Main Methods:

  • Studied 106 families with mitochondrial DNA mutations, identifying heteroplasmic mutations in MT-ND1, MT-ND3, and MT-ND5 genes in 13 patients.
  • Assessed respiratory chain complex activities via spectrophotometry and MEGS using radiolabeled substrates in muscle biopsies and fibroblasts.
  • Analyzed protein levels using SDS-PAGE or BN-PAGE.

Main Results:

  • Thirteen patients from 12 families presented with Leigh syndrome, MELAS syndrome, or overlapping phenotypes, with symptom onset from early childhood to adolescence.
  • Mitochondrial disturbances were evident in muscle samples, with significantly decreased pyruvate oxidation in fibroblasts.
  • Lower complex I activity correlated with disease severity, and higher heteroplasmy levels were observed in more severely affected patients.

Conclusions:

  • Maternally inherited complex I deficiencies account for 11% of mitochondrial diseases in the region, with diverse clinical presentations.
  • Fibroblast pyruvate oxidation is a sensitive indicator of functional impairment from MT-ND mutations.
  • Early disease onset and higher mtDNA heteroplasmy are associated with a poorer prognosis, emphasizing the importance of early detection and management.

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