1. Oxidative DNA damage stalls the human mitochondrial replisome
- Author
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Gorazd Stojkovič, Alena V. Makarova, Sjoerd Wanrooij, Josefin M. E. Forslund, Paulina H. Wanrooij, and Peter M. J. Burgers
- Subjects
0301 basic medicine ,DNA Replication ,Mitochondrial DNA ,DNA polymerase ,DNA polymerase II ,DNA Primase ,DNA-Directed DNA Polymerase ,medicine.disease_cause ,DNA, Mitochondrial ,Article ,Oxidative dna damage ,Mitochondrial Proteins ,03 medical and health sciences ,chemistry.chemical_compound ,medicine ,Humans ,Genetics ,Multidisciplinary ,biology ,DNA Helicases ,Multifunctional Enzymes ,Cell biology ,DNA Polymerase gamma ,Mitochondria ,DNA-Binding Proteins ,Oxidative Stress ,030104 developmental biology ,chemistry ,biology.protein ,Replisome ,DNA ,Oxidative stress ,DNA Damage - Abstract
Oxidative stress is capable of causing damage to various cellular constituents, including DNA. There is however limited knowledge on how oxidative stress influences mitochondrial DNA and its replication. Here, we have used purified mtDNA replication proteins, i.e. DNA polymerase γ holoenzyme, the mitochondrial single-stranded DNA binding protein mtSSB, the replicative helicase Twinkle and the proposed mitochondrial translesion synthesis polymerase PrimPol to study lesion bypass synthesis on oxidative damage-containing DNA templates. Our studies were carried out at dNTP levels representative of those prevailing either in cycling or in non-dividing cells. At dNTP concentrations that mimic those in cycling cells, the replication machinery showed substantial stalling at sites of damage and these problems were further exacerbated at the lower dNTP concentrations present in resting cells. PrimPol, the translesion synthesis polymerase identified inside mammalian mitochondria, did not promote mtDNA replication fork bypass of the damage. This argues against a conventional role for PrimPol as a mitochondrial translesion synthesis DNA polymerase for oxidative DNA damage; however, we show that Twinkle, the mtDNA replicative helicase, is able to stimulate PrimPol DNA synthesis in vitro, suggestive of an as yet unidentified role of PrimPol in mtDNA metabolism.
- Published
- 2016