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Mitochondrial dysfunction due to oxidative mitochondrial DNA damage is reduced through cooperative actions of diverse
Thomas W O'Rourke1, Nicole A Doudican, Melinda D Mackereth
1Department of Biochemistry, Emory University School of Medicine, Rollins Research Center, Emory University, Atlanta, Georgia 30322, USA.
Abstract:
The mitochondrial genome is a significant target of exogenous and endogenous genotoxic agents; however, the determinants that govern this susceptibility and the pathways available to resist mitochondrial DNA (mtDNA) damage are not well characterized. Here we report that oxidative mtDNA damage is elevated in strains lacking Ntg1p, providing the first direct functional evidence that this mitochondrion-localized, base excision repair enzyme functions to protect mtDNA. However, ntg1 null strains did not exhibit a mitochondrial respiration-deficient (petite) phenotype, suggesting that mtDNA damage is negotiated by the cooperative actions of multiple damage resistance pathways. Null mutations in ABF2 or PIF1, two genes implicated in mtDNA maintenance and recombination, exhibit a synthetic-petite phenotype in combination with ntg1 null mutations that is accompanied by enhanced mtDNA point mutagenesis in the corresponding double-mutant strains. This phenotype was partially rescued by malonic acid, indicating that reactive oxygen species generated by the electron transport chain contribute to mitochondrial dysfunction in abf2 Delta strains. In contrast, when two other genes involved in mtDNA recombination, CCE1 and NUC1, were inactivated a strong synthetic-petite phenotype was not observed, suggesting that the effects mediated by Abf2p and Pif1p are due to novel activities of these proteins other than recombination. These results document the existence of recombination-independent mechanisms in addition to base excision repair to cope with oxidative mtDNA damage in Saccharomyces cerevisiae. Such systems are likely relevant to those operating in human cells where mtDNA recombination is less prevalent, validating yeast as a model system in which to study these important issues.
Insights
Mitochondrial DNA (mtDNA) is protected by base excision repair enzymes like Ntg1p. Other pathways involving ABF2 and PIF1 also prevent mtDNA damage and dysfunction, particularly oxidative damage.
Area of Science:
- Mitochondrial Biology
- DNA Repair
- Genetics
Background:
- Mitochondrial DNA (mtDNA) is vulnerable to genotoxic damage from both external and internal sources.
- The specific mechanisms and pathways that protect mtDNA and confer resistance to damage are not fully understood.
Purpose of the Study:
- To investigate the role of the base excision repair enzyme Ntg1p in protecting mtDNA from oxidative damage.
- To identify other genes and pathways involved in maintaining mtDNA integrity and preventing mitochondrial dysfunction.
Main Methods:
- Utilized Saccharomyces cerevisiae (yeast) as a model organism.
- Generated and analyzed yeast strains with null mutations in genes such as NTG1, ABF2, PIF1, CCE1, and NUC1.
- Assessed mitochondrial respiration-deficient (petite) phenotypes and mtDNA point mutagenesis.
- Investigated the role of reactive oxygen species (ROS) in mitochondrial dysfunction.
Main Results:
- The absence of Ntg1p led to increased oxidative mtDNA damage, confirming its role in mtDNA protection.
- Double mutant strains lacking NTG1 and either ABF2 or PIF1 exhibited synthetic-petite phenotypes and enhanced mtDNA mutagenesis.
- Reactive oxygen species from the electron transport chain contributed to mitochondrial dysfunction in abf2 Delta strains.
- Inactivation of CCE1 or NUC1 did not result in a strong synthetic-petite phenotype, suggesting Abf2p and Pif1p have functions beyond recombination.
Conclusions:
- Identified base excision repair and recombination-independent mechanisms that combat oxidative mtDNA damage in yeast.
- Demonstrated the cooperative action of multiple pathways in maintaining mtDNA integrity.
- Highlighted the relevance of yeast as a model for studying human mtDNA maintenance, given the lower prevalence of mtDNA recombination in humans.