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Updated: Mar 8, 2026

Measuring Single-Cell Mitochondrial DNA Copy Number and Heteroplasmy Using Digital Droplet Polymerase Chain Reaction
Published on: July 12, 2022
Mitochondrial DNA point mutations and relative copy number in 1363 disease and control human brains
Wei Wei1,2, Michael J Keogh1,2,3, Ian Wilson1
1Institute of Genetic Medicine, Central Parkway, Newcastle University, Newcastle Upon Tyne, NE1 3BZ, UK.
Abstract:
Mitochondria play a key role in common neurodegenerative diseases and contain their own genome: mtDNA. Common inherited polymorphic variants of mtDNA have been associated with several neurodegenerative diseases, and somatic deletions of mtDNA have been found in affected brain regions. However, there are conflicting reports describing the role of rare inherited variants and somatic point mutations in neurodegenerative disorders, and recent evidence also implicates mtDNA levels. To address these issues we studied 1363 post mortem human brains with a histopathological diagnosis of Parkinson's disease (PD), Alzheimer's disease (AD), Frontotemporal dementia - Amyotrophic Lateral Sclerosis (FTD-ALS), Creutzfeldt Jacob disease (CJD), and healthy controls. We obtained high-depth whole mitochondrial genome sequences using off target reads from whole exome sequencing to determine the association of mtDNA variation with the development and progression of disease, and to better understand the development of mtDNA mutations and copy number in the aging brain. With this approach, we found a surprisingly high frequency of heteroplasmic mtDNA variants in 32.3% of subjects. However, we found no evidence of an association between rare inherited variants of mtDNA or mtDNA heteroplasmy and disease. In contrast, we observed a reduction in the amount of mtDNA copy in both AD and CJD. Based on these findings, single nucleotide variants of mtDNA are unlikely to play a major role in the pathogenesis of these neurodegenerative diseases, but mtDNA levels merit further investigation.
Insights
Mitochondrial DNA (mtDNA) variants were not linked to neurodegenerative diseases. However, reduced mtDNA copy number was observed in Alzheimer's disease and Creutzfeldt-Jakob disease brains, suggesting mtDNA levels warrant further study.
Area of Science:
- Neuroscience
- Genetics
- Mitochondrial Biology
Background:
- Mitochondria and their genome (mtDNA) are crucial in neurodegenerative diseases.
- Inherited mtDNA variants and somatic deletions are implicated, but rare variants and somatic mutations have conflicting evidence.
- Emerging research suggests mtDNA levels may also play a role.
Purpose of the Study:
- To investigate the association of mtDNA variation and copy number with neurodegenerative diseases.
- To analyze rare inherited mtDNA variants, heteroplasmy, and somatic mutations in post mortem brain tissue.
- To understand the role of mtDNA in the aging brain and disease pathogenesis.
Main Methods:
- Whole mitochondrial genome sequencing of 1363 post mortem human brains (PD, AD, FTD-ALS, CJD, controls).
- High-depth sequencing using off-target reads from whole exome sequencing.
- Analysis of heteroplasmic mtDNA variants, rare inherited variants, somatic mutations, and mtDNA copy number.
Main Results:
- A high frequency (32.3%) of heteroplasmic mtDNA variants was detected.
- No significant association was found between rare inherited mtDNA variants or heteroplasmy and neurodegenerative diseases.
- A significant reduction in mtDNA copy number was observed in Alzheimer's disease and Creutzfeldt-Jakob disease brains.
Conclusions:
- Single nucleotide variants in mtDNA are unlikely to be major drivers of these neurodegenerative diseases.
- mtDNA copy number reduction in specific neurodegenerative diseases warrants further investigation.
- mtDNA levels represent a potential area for future research in neurodegeneration.
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