DRP lyase deficient DNA polymerase beta impairs mitochondrial electron transport chain and compromise mitochondrial

Dawit Kidane1, Aashirwad Shahi, Nyima Kinteh

  • 1College of Medicine, Howard University.

Research Square
|August 1, 2026
PubMed

Insights

DNA polymerase beta

Area of Science:

  • Mitochondrial biology
  • DNA repair mechanisms
  • Genomic stability

Background:

  • Mitochondrial DNA (mtDNA) is vulnerable to damage from reactive oxygen species (ROS) and lacks histone protection.
  • Base excision repair is crucial for maintaining mitochondrial genomic stability against oxidative damage.

Purpose of the Study:

  • To investigate the role of DNA polymerase beta's dRP lyase activity in repairing ROS-induced mtDNA damage.
  • To understand how loss of this activity impacts mtDNA integrity and metabolic function.

Main Methods:

  • Utilized dRP lyase deficient DNA polymerase beta (PolB-dRP lyase) cells as a model system.
  • Analyzed ROS accumulation, gene expression (antioxidant, ETC), mtDNA damage, and replication stress.
  • Examined PolB-dRP lyase deficient mouse stomach tissues.

Main Results:

  • PolB-dRP lyase deficient cells showed increased ROS, decreased antioxidant and electron transport chain (ETC) gene expression.
  • Significant mtDNA damage and replication stress were observed in these cells.
  • Mouse tissues exhibited elevated ROS and altered mitochondrial signaling.

Conclusions:

  • Loss of PolB dRP lyase activity leads to mtDNA damage, replication stress, and metabolic dysregulation.
  • This highlights the critical role of PolB dRP lyase in the ROS/ETC balance and mtDNA integrity.

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