Mitochondrial protein-linked DNA breaks perturb mitochondrial gene transcription and trigger free radical-induced DNA
Shih-Chieh Chiang1, Martin Meagher2, Nick Kassouf3
1Krebs Institute and Sheffield Institute for Nucleic Acids, Department of Molecular Biology and Biotechnology, Firth Court, University of Sheffield, S10 2TN Sheffield, U.K.
Abstract:
Breakage of one strand of DNA is the most common form of DNA damage. Most damaged DNA termini require end-processing in preparation for ligation. The importance of this step is highlighted by the association of defects in the 3'-end processing enzyme tyrosyl DNA phosphodiesterase 1 (TDP1) and neurodegeneration and by the cytotoxic induction of protein-linked DNA breaks (PDBs) and oxidized nucleic acid intermediates during chemotherapy and radiotherapy. Although much is known about the repair of PDBs in the nucleus, little is known about this process in the mitochondria. We reveal that TDP1 resolves mitochondrial PDBs (mtPDBs), thereby promoting mitochondrial gene transcription. Overexpression of a toxic form of mitochondrial topoisomerase I (TOP1mt*), which generates excessive mtPDBs, results in a TDP1-dependent compensatory up-regulation of mitochondrial gene transcription. In the absence of TDP1, the imbalance in transcription of mitochondrial- and nuclear-encoded electron transport chain (ETC) subunits results in misassembly of ETC complex III. Bioenergetics profiling further reveals that TDP1 promotes oxidative phosphorylation under both basal and high energy demands. It is known that mitochondrial dysfunction results in free radical leakage and nuclear DNA damage; however, the detection of intermediates of radical damage to DNA is yet to be shown. Consequently, we report an increased accumulation of carbon-centered radicals in cells lacking TDP1, using electron spin resonance spectroscopy. Overexpression of the antioxidant enzyme superoxide dismutase 1 (SOD1) reduces carbon-centered adducts and protects TDP1-deficient cells from oxidative stress. Conversely, overexpression of the amyotrophic lateral sclerosis-associated mutant SOD1G93A leads to marked sensitivity. Whereas Tdp1 knockout mice develop normally, overexpression of SOD1G93A suggests early embryonic lethality. Together, our data show that TDP1 resolves mtPDBs, thereby regulating mitochondrial gene transcription and oxygen consumption by oxidative phosphorylation, thus conferring cellular protection against reactive oxygen species-induced damage.
Insights
Tyrosyl DNA phosphodiesterase 1 (TDP1) repairs mitochondrial DNA breaks, supporting gene transcription and cellular protection against oxidative stress. Its absence causes mitochondrial dysfunction and sensitivity to reactive oxygen species.
Area of Science:
- Mitochondrial Biology
- DNA Repair
- Cellular Respiration
Background:
- DNA damage is common, with protein-linked DNA breaks (PDBs) induced by chemotherapy.
- Tyrosyl DNA phosphodiesterase 1 (TDP1) repairs nuclear PDBs, but its role in mitochondria is unclear.
- Mitochondrial dysfunction is linked to oxidative stress and nuclear DNA damage.
Purpose of the Study:
- To investigate the role of TDP1 in resolving mitochondrial protein-linked DNA breaks (mtPDBs).
- To determine TDP1's impact on mitochondrial gene transcription and oxidative phosphorylation.
- To assess the cellular consequences of TDP1 deficiency, including oxidative damage.
Main Methods:
- Investigated TDP1's resolution of mtPDBs using a toxic mitochondrial topoisomerase I (TOP1mt*) model.
- Analyzed mitochondrial gene transcription and electron transport chain (ETC) complex assembly.
- Performed bioenergetics profiling and electron spin resonance (ESR) spectroscopy to detect radicals.
Main Results:
- TDP1 resolves mtPDBs, promoting mitochondrial gene transcription and proper ETC complex III assembly.
- TDP1 deficiency leads to transcriptional imbalance, impaired oxidative phosphorylation, and increased carbon-centered radicals.
- Overexpression of superoxide dismutase 1 (SOD1) mitigates oxidative stress in TDP1-deficient cells, while SOD1G93A causes sensitivity.
Conclusions:
- TDP1 is crucial for resolving mtPDBs, regulating mitochondrial transcription and oxidative phosphorylation.
- TDP1 confers cellular protection against reactive oxygen species-induced damage.
- Impaired TDP1 function contributes to mitochondrial dysfunction and oxidative stress.
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