Increases in mitochondrial DNA content and 4977-bp deletion upon ATM/Chk2 checkpoint activation in HeLa cells

Rong Niu1, Minoru Yoshida, Feng Ling

  • 1Chemical Genetics Laboratory, RIKEN Advanced Science Institute, and CREST, JST, Wako-shi, Saitama, Japan.

Plos One
|July 19, 2012
PubMed

Insights

Human DNA helicase RRM3 knockdown activates the ATM/Chk2 DNA damage checkpoint, increasing mitochondrial DNA (mtDNA) content and promoting mtDNA deletions. This suggests a link between oxidative stress, checkpoint activation, and mitochondrial genome instability.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • The Mec1/Rad53 DNA damage checkpoint pathway affects mitochondrial DNA (mtDNA) in yeast.
  • The role of this pathway in human mitochondrial genomes is largely unexplored.

Purpose of the Study:

  • To investigate the impact of human DNA helicase RRM3 knockdown on the ATM/Chk2 DNA damage checkpoint and mitochondrial genome.
  • To elucidate the relationship between RRM3, oxidative stress, and mtDNA integrity in human cells.

Main Methods:

  • Knockdown of human DNA helicase RRM3.
  • Assessment of Chk2 phosphorylation and ATM/Chk2 pathway activation.
  • Quantification of mtDNA content and analysis of mtDNA deletions.
  • Measurement of reactive oxygen species (ROS) levels.
  • Treatment with ROS scavengers (N-acetyl cysteine, vitamin C).

Main Results:

  • RRM3 knockdown enhanced Chk2 phosphorylation, indicating ATM/Chk2 pathway activation.
  • mtDNA content increased independently of TFAM, and this increase was suppressed by ROS scavengers.
  • RRM3 knockdown led to increased reactive oxygen species (ROS) levels.
  • The frequency of the common 4977-bp mtDNA deletion increased in RRM3 knockdown cells.

Conclusions:

  • RRM3 knockdown triggers TFAM-independent mtDNA replication and increases mtDNA content via oxidative stress.
  • ATM/Chk2 checkpoint activation in response to DNA damage is linked to increased ROS and mtDNA deletions.
  • These findings highlight a connection between DNA damage response, oxidative stress, and mitochondrial genome instability in human cells.

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