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Published on: March 17, 2023
Maternally inherited coronary heart disease is associated with a novel mitochondrial tRNA mutation
Zhenxiao Zhang1, Mingyang Liu1, Jianshuai He2
1Department of Emergency, Affiliated hospital of Qingdao university, Jiangsu Road No. 16, Qingdao, 266000, Shandong, China.
Insights
A novel mitochondrial tRNA Thr 15910C>T mutation was identified in Chinese families with coronary heart disease (CHD). This mutation disrupts tRNA function and mitochondrial translation, suggesting a potential link to CHD development.
Area of Science:
- Genetics
- Mitochondrial Biology
- Cardiology
Background:
- Coronary heart disease (CHD) is a leading global cause of mortality.
- The role of mitochondrial genetic mutations in CHD pathogenesis is not fully understood.
Purpose of the Study:
- To investigate mitochondrial genetic mutations in Chinese families with maternally inherited CHD.
- To characterize the functional impact of a novel tRNA Thr mutation on mitochondrial function.
Main Methods:
- Clinical, genetic, molecular, and biochemical evaluations were performed on subjects from three Chinese families.
- Mitochondrial genomes were sequenced, and a tRNA Thr 15910C>T mutation was identified.
- Biochemical analyses included tRNA levels, electron transport chain complex activity, and mitochondrial translation rates.
Main Results:
- A tRNA Thr 15910C>T mutation within the Eastern Asian haplogroup M7b'c was identified in individuals with CHD.
- The mutation is predicted to destabilize tRNA structure and reduce tRNA Thr levels by 37.5%.
- Mitochondrial translation rates decreased by approximately 24.96% in cells harboring the mutation.
Conclusions:
- The findings suggest a potential association between the tRNA Thr 15910C>T mutation and coronary heart disease.
- This mutation may disrupt mitochondrial function and contribute to CHD development.
- Further research may reveal new therapeutic strategies for CHD intervention.
Background:
Coronary heart disease (CHD) is the most common cause of mortality globally, yet mitochondrial genetic mutations associated with CHD development remain incompletely understood.
Methods:
The subjects from three Chinese families with LHON underwent clinical, genetic, molecular, and biochemical evaluations. Biochemical characterizations included measuring the effects of the15910C > T mutation on tRNAThr levels, enzymatic activity of electron transport chain complexes, membrane permeability, and the mitochondria-mediated generation of both reactive oxygen species (ROS) and adenosine triphosphate (ATP).
Results:
We characterize mitochondrial genetic mutations in a three-generation Chinese family exhibiting signs of maternally inherited CHD. Of the 24 different family members in this pedigree we assessed, CHD was detected in 6, with variable severity and age of first appearance. When we sequenced the mitochondrial genomes of these individuals, we found a tRNAThr 15910C > T mutation of the Eastern Asian haplogroup M7b'c. This mutation is predicted to destabilize the strongly conserved (24C-10G) base-pairing, thereby disrupting tRNAThr functionality. When we performed Northern blotting, we detected we observed a 37.5% reduction in tRNAThr levels at baseline in cybrid cell lines bearing the 15910C > T mutation. When we conducted western blot analysis, we detected a ~ 24.96% decrease in mitochondrial translation rates in these same cells.
Conclusions:
In the present report, Together these findings suggest a possible link between this 15910C > T tRNAThr mutation and CHD, potentially offering new avenues for future disease intervention.
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