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Implications of mtDNA in human health and diseases
Smruthi Seethashankar1,2, Shruti Hariharan1,2, Venkatachalam Deepa Parvathi1
1Department of Biomedical Sciences, Sri Ramachandra Institute of Higher Education and Research, Chennai, India.
Abstract:
The maternally inherited autonomous organelles, mitochondria, are responsible for a myriad of functions within the cell. They may contain more than one copy of DNA and can themselves be present in multiple numbers within a cell. The integrity of the mitochondrial genome is affected by variations in DNA copy number or the presence of mutations. Compromising this integrity has been documented to result in disorders affecting various systems. Focusing on such trends could enhance knowledge essential for developing strategies to manage these disorders. Irregular patterns of mitochondrial DNA (mtDNA) copy number (CN) variation have been identified in various cancers. Reduced mtDNA CN has been associated with neurodegenerative disorders, cardiovascular diseases, and kidney disorders. Mutations in the mitochondrial respiratory chain complex have been linked to cardiomyopathy. High rates of mtDNA deletions have been found in aging patients and subjects with Parkinson's disease. While sperm function appears to deteriorate with increased mtDNA CN, oogenesis involves a significant increase to enable the oocyte to achieve fertilization and further development. Prospective therapies to treat mitochondrial diseases may include approaches that aim to reduce the levels of mutant mtDNA below the disease-causing threshold, such as targeted removal of defective mitochondria. Mutations in mitochondrial DNA contribute to various diseases; some single substitutions appear to disrupt the normalcy of more than one organ, underscoring the importance of mitochondrial genome integrity. The presence of mutations and copy number variations may serve as diagnostic markers and also provide insight into prognosis.
Insights
Mitochondrial DNA (mtDNA) integrity is crucial for cellular function. Variations in mtDNA copy number and mutations are linked to various diseases, offering potential diagnostic markers and therapeutic targets.
Area of Science:
- Cell Biology
- Genetics
- Molecular Medicine
Background:
- Mitochondria, maternally inherited organelles, are vital for cellular functions.
- Mitochondrial DNA (mtDNA) integrity is influenced by DNA copy number and mutations.
- Disruptions in mtDNA integrity are associated with numerous human disorders.
Purpose of the Study:
- To explore the role of mitochondrial DNA copy number variations and mutations in disease.
- To highlight the significance of mitochondrial genome integrity for health.
- To identify potential diagnostic markers and therapeutic strategies for mitochondrial disorders.
Main Methods:
- Review of existing literature on mtDNA copy number variations and mutations.
- Analysis of associations between mtDNA alterations and various disease states.
- Exploration of potential therapeutic approaches targeting defective mitochondria.
Main Results:
- Irregular mtDNA copy number variations are observed in cancers.
- Reduced mtDNA copy number is linked to neurodegenerative, cardiovascular, and kidney diseases.
- mtDNA mutations are associated with cardiomyopathy and Parkinson's disease, and deletions increase with aging.
Conclusions:
- Mitochondrial genome integrity is essential for preventing multi-organ dysfunction.
- mtDNA mutations and copy number variations can serve as diagnostic markers and prognostic indicators.
- Targeted therapies to reduce mutant mtDNA levels show promise for treating mitochondrial diseases.
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