A novel mitochondrial heteroplasmic C13806A point mutation associated with Iranian Friedreich's ataxia
Mohammad Mehdi Heidari1, Massoud Houshmand, Saman Hosseinkhani
1Department of Genetics, Science School, Tarbiat Modares University (TMU), Tehran, Iran.
Abstract:
Friedreich's ataxia (FRDA) is an autosomal recessive neurodegenerative disorder caused by decreased expression of the protein Frataxin. Frataxin deficiency leads to excessive free radical production and dysfunction of chain complexes. Mitochondrial DNA (mtDNA) could be considered a candidate modifier factor for FRDA disease, since mitochondrial oxidative stress is thought to be involved in the pathogenesis of this disease. It prompted us to focus on the mtDNA and monitor the nucleotide changes of genome which are probably the cause of respiratory chain defects and reduced ATP generation. We searched about 46% of the entire mitochondrial genome by temporal temperature gradient gel electrophoresis (TTGE) and DNA fragments showing abnormal banding patterns were sequenced for the identification of exact mutations. In 18 patients, for the first time, we detected 26 mtDNA mutations; of which 5 (19.2%) was novel and 21 (80.8%) have been reported in other diseases. Heteroplasmic C13806A polymorphisms were associated with Iranian FRDA patients (55.5%). Our results showed that NADH dehydrogenase (ND) genes mutations in FRDA samples were higher than normal controls (P < 0.001) and we found statistically significant inverse correlation (r = -0.8) between number of mutation in ND genes and age of onset in FRDA patients. It is possible that mutations in ND genes could constitute a predisposing factor which in combination with environmental risk factors affects age of onset and disease progression.
Insights
Mitochondrial DNA (mtDNA) mutations were identified in Friedreich
Area of Science:
- Genetics
- Neurodegenerative Disorders
- Mitochondrial Biology
Background:
- Friedreich's ataxia (FRDA) is a neurodegenerative disorder linked to reduced Frataxin protein.
- Frataxin deficiency causes oxidative stress and mitochondrial dysfunction.
- Mitochondrial DNA (mtDNA) is investigated as a potential modifier of FRDA pathogenesis.
Purpose of the Study:
- To investigate nucleotide changes in the mitochondrial genome of FRDA patients.
- To identify specific mtDNA mutations contributing to respiratory chain defects and reduced ATP generation.
Main Methods:
- Analysis of approximately 46% of the mitochondrial genome using temporal temperature gradient gel electrophoresis (TTGE).
- Sequencing of DNA fragments with abnormal banding patterns to identify mutations.
- Comparison of mutation frequencies between FRDA patients and controls.
Main Results:
- Twenty-six mtDNA mutations were detected in 18 FRDA patients, including 5 novel mutations.
- Heteroplasmic C13806A polymorphisms were found in 55.5% of Iranian FRDA patients.
- NADH dehydrogenase (ND) gene mutations were significantly higher in FRDA patients (P < 0.001) and inversely correlated with age of onset (r = -0.8).
Conclusions:
- Mutations in ND genes may predispose individuals to FRDA.
- mtDNA mutations, particularly in ND genes, could influence disease progression and age of onset in FRDA.
- Further research into ND gene mutations is warranted for understanding FRDA pathogenesis.
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