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An In Vitro Approach to Study Mitochondrial Dysfunction: A Cybrid Model
Published on: March 9, 2022
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.
Background:
Maternally inherited complex I deficiencies due to mutations in MT-ND genes represent a heterogeneous group of multisystem mitochondrial disorders (MD) with a unfavourable prognosis. The aim of the study was to characterize the impact of the mutations in MT-ND genes, including the novel m.13091 T > C variant, on the course of the disease, and to analyse the activities of respiratory chain complexes, the amount of protein subunits, and the mitochondrial energy-generating system (MEGS) in available muscle biopsies and cultivated fibroblasts.
Methods:
The respiratory chain complex activities were measured by spectrophotometry, MEGS were analysed using radiolabelled substrates, and protein amount by SDS-PAGE or BN-PAGE in muscle or fibroblasts.
Results:
In our cohort of 106 unrelated families carrying different mtDNA mutations, we found heteroplasmic mutations in the genes MT-ND1, MT-ND3, and MT-ND5, including the novel variant m.13091 T > C, in 13 patients with MD from 12 families. First symptoms developed between early childhood and adolescence and progressed to multisystem disease with a phenotype of Leigh or MELAS syndromes. MRI revealed bilateral symmetrical involvement of deep grey matter typical of Leigh syndrome in 6 children, cortical/white matter stroke-like lesions suggesting MELAS syndrome in 3 patients, and a combination of cortico-subcortical lesions and grey matter involvement in 4 patients. MEGS indicated mitochondrial disturbances in all available muscle samples, as well as a significantly decreased oxidation of [1-14C] pyruvate in fibroblasts. Spectrophotometric analyses revealed a low activity of complex I and/or complex I + III in all muscle samples except one, but the activities in fibroblasts were mostly normal. No correlation was found between complex I activities and mtDNA mutation load, but higher levels of heteroplasmy were generally found in more severely affected patients.
Conclusions:
Maternally inherited complex I deficiencies were found in 11% of families with mitochondrial diseases in our region. Six patients manifested with Leigh, three with MELAS. The remaining four patients presented with an overlap between these two syndromes. MEGS, especially the oxidation of [1-14C] pyruvate in fibroblasts might serve as a sensitive indicator of functional impairment due to MT-ND mutations. Early onset of the disease and higher level of mtDNA heteroplasmy were associated with a worse prognosis.
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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