The Fate of Oxidative Strand Breaks in Mitochondrial DNA

Genevieve Trombly1, Afaf Milad Said1, Alexei P Kudin1

  • 1Institute of Experimental Epileptology and Cognition Research, Medical Faculty, University of Bonn, 53127 Bonn, Germany.

Insights

Hydrogen peroxide (H2O2) causes mitochondrial DNA (mtDNA) double-strand breaks (DSBs) in cells. Rapid repair and degradation, not replication, restore mtDNA integrity after oxidative damage.

Area of Science:

  • Mitochondrial Biology
  • Molecular Genetics
  • Cellular Stress Response

Background:

  • Mitochondrial DNA (mtDNA) is susceptible to mutations from factors like reactive oxygen species.
  • DNA polymerase gamma (POLG) errors and oxidative stress are key contributors to mtDNA mutagenesis.

Purpose of the Study:

  • To investigate the impact of transient hydrogen peroxide (H2O2) exposure on mtDNA integrity in HEK 293 cells.
  • To elucidate the mechanisms underlying mtDNA repair and recovery following oxidative damage.

Main Methods:

  • Southern blotting and ultra-deep short-read and long-read sequencing were employed.
  • Analysis of mtDNA integrity and repair dynamics after H2O2 treatment in wild-type and POLG mutant cells.

Main Results:

  • H2O2 induced linear mtDNA fragments (DSBs) with GC-rich ends within 30 minutes.
  • Intact mtDNA recovered within 2-24 hours, driven by SSB repair and DSB degradation, not replication.
  • Exonuclease-deficient POLG mutants showed persistent linear mtDNA fragments, indicating impaired degradation.

Conclusions:

  • Cellular recovery from oxidative mtDNA damage involves rapid SSB repair and DSB degradation, followed by slower mtDNA re-synthesis.
  • This interplay is crucial for mtDNA quality control and preventing somatic mtDNA deletions.

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