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Bioenergetic consequences of accumulating the common 4977-bp mitochondrial DNA deletion
W K Porteous1, A M James, P W Sheard
1Department of Biochemistry, University of Otago, Dunedin, New Zealand.
Abstract:
Mutations and deletions in mitochondrial DNA (mtDNA) lead to a number of human diseases characterized by neuromuscular degeneration. Accumulation of truncated mtDNA molecules (delta-mtDNA) lacking a specific 4977-bp fragment, the common deletion, leads to three related mtDNA diseases: Pearson's syndrome; Kearns-Sayre syndrome; and chronic progressive external ophthalmoplegia (CPEO). In addition, the proportion of delta-mtDNA present increases with age in a range of tissues. Consequently, there is considerable interest in the effects of the accumulation of delta-mtDNA on cell function. The 4977-bp deletion affects genes encoding 7 polypeptide components of the mitochondrial respiratory chain, and 5 of the 22 tRNAs necessary for mitochondrial protein synthesis. To determine how the accumulation of delta-mtDNA affects oxidative phosphorylation we constructed a series of cybrids by fusing a human osteosarcoma cell line depleted of mtDNA (rho0) with enucleated skin fibroblasts from a CPEO patient. The ensuing cybrids contained 0-86% delta-mtDNA and all had volumes, protein contents, plasma-membrane potentials and mitochondrial contents similar to those of the parental cell line. The bioenergetic consequences of accumulating delta-mtDNA were assessed by measuring the mitochondrial membrane potential, rate of ATP synthesis and ATP/ADP ratio. In cybrids containing less than 50-55% delta-mtDNA, these bioenergetic functions were equivalent to those of cybrids with intact mtDNA. However, once the proportion of delta-mtDNA exceeded this threshold, the mitochondrial membrane potential, rate of ATP synthesis, and cellular ATP/ADP ratio decreased. These bioenergetic deficits will contribute to the cellular pathology associated with the accumulation of delta-mtDNA in the target tissues of patients with mtDNA diseases.
Insights
Mitochondrial DNA (mtDNA) deletions cause neuromuscular diseases. Accumulation of deleted mtDNA (delta-mtDNA) impairs cell function, with significant bioenergetic deficits observed when delta-mtDNA exceeds 55%.
Area of Science:
- Mitochondrial biology
- Human genetics
- Cellular pathology
Background:
- Mutations and deletions in mitochondrial DNA (mtDNA) are linked to neuromuscular degenerative diseases.
- The common 4977-bp deletion in mtDNA results in delta-mtDNA, implicated in Pearson's syndrome, Kearns-Sayre syndrome, and chronic progressive external ophthalmoplegia (CPEO).
- The proportion of delta-mtDNA increases with age, raising interest in its cellular impact.
Purpose of the Study:
- To investigate the bioenergetic consequences of accumulating delta-mtDNA on cellular function.
- To determine the threshold of delta-mtDNA accumulation that leads to impaired oxidative phosphorylation.
Main Methods:
- Construction of cybrids by fusing mtDNA-depleted (rho0) osteosarcoma cells with enucleated fibroblasts from a CPEO patient.
- Generation of cybrids with varying percentages (0-86%) of delta-mtDNA.
- Assessment of bioenergetic functions including mitochondrial membrane potential, ATP synthesis rate, and ATP/ADP ratio.
Main Results:
- Cybrids with less than 50-55% delta-mtDNA showed bioenergetic functions comparable to those with intact mtDNA.
- A significant decrease in mitochondrial membrane potential, ATP synthesis rate, and cellular ATP/ADP ratio was observed when delta-mtDNA exceeded the 50-55% threshold.
- Cellular parameters like volume, protein, plasma-membrane potential, and mitochondrial content remained similar across cybrids.
Conclusions:
- The accumulation of delta-mtDNA leads to a threshold-dependent decline in cellular bioenergetic function.
- These bioenergetic deficits contribute to the cellular pathology observed in tissues affected by mtDNA diseases.
- Understanding this threshold is crucial for comprehending the progression of mitochondrial DNA-related disorders.