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Detection and quantification of mitochondrial DNA deletions in individual cells by real-time PCR
Langping He1, Patrick F Chinnery, Steve E Durham
1Department of Neurology, The Medical School, University of Newcastle upon Tyne, Framlington Place, Newcastle upon Tyne NE2 4HH, UK.
Abstract:
Defects of mitochondrial DNA (mtDNA) are an important cause of disease and play a role in the ageing process. There are multiple copies of the mitochondrial genome in a single cell. In many patients with acquired or inherited mtDNA mutations, there exists a mixture of mutated and wild type genomes (termed heteroplasmy) within individual cells. As a biochemical and clinical defect is only observed when there are high levels of mutated mtDNA, a crucial investigation is to determine the level of heteroplasmic mutations within tissues and individual cells. We have developed an assay to determine the relative amount of deleted mtDNA using real-time fluorescence PCR. This assay detects the vast majority of deleted molecules, thus eliminating the need to develop specific probes. We have demonstrated an excellent correlation with other techniques (Southern blotting and three- primer competitive PCR), and have shown this technique to be sensitive to quantify the level of deleted mtDNA molecules in individual cells. Finally, we have used this assay to investigate patients with mitochondrial disease and shown in individual skeletal muscle fibres that there exist different patterns of abnormalities between patients with single or multiple mtDNA deletions. We believe that this technique has significant advantages over other methods to quantify deleted mtDNA and, employed alongside our method to sequence the mitochondrial genome from single cells, will further our understanding of the role of mtDNA mutations in human disease and ageing.
Insights
Mitochondrial DNA (mtDNA) deletions are linked to disease and aging. A new real-time PCR assay accurately quantifies these deletions in single cells, aiding research into mitochondrial disorders.
Area of Science:
- Mitochondrial biology
- Genetics
- Molecular medicine
Background:
- Mitochondrial DNA (mtDNA) defects are implicated in disease and aging.
- Heteroplasmy, a mix of mutated and wild-type mtDNA, complicates disease assessment.
- Quantifying mutated mtDNA levels is crucial for understanding disease mechanisms.
Purpose of the Study:
- To develop a sensitive assay for quantifying deleted mtDNA.
- To validate the assay against existing methods.
- To investigate mtDNA deletion patterns in patients with mitochondrial disease.
Main Methods:
- Development of a real-time fluorescence PCR assay to detect deleted mtDNA.
- Validation using Southern blotting and three-primer competitive PCR.
- Application of the assay to analyze skeletal muscle fibers from patients.
Main Results:
- The developed assay accurately quantifies deleted mtDNA molecules.
- The technique shows excellent correlation with established methods.
- Distinct mtDNA deletion patterns were observed in individual skeletal muscle fibers of patients.
Conclusions:
- The novel real-time PCR assay offers significant advantages for quantifying deleted mtDNA.
- This method, combined with single-cell mtDNA sequencing, can advance understanding of mtDNA mutations in disease and aging.
- The study reveals varied abnormalities in skeletal muscle fibers related to single or multiple mtDNA deletions.