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Published on: November 5, 2012
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.
Abstract:
Activation of the Mec1/Rad53 damage checkpoint pathway influences mitochondrial DNA (mtDNA) content and point mutagenesis in Saccharomyces cerevisiae. The effects of this conserved checkpoint pathway on mitochondrial genomes in human cells remain largely unknown. Here, we report that knockdown of the human DNA helicase RRM3 enhances phosphorylation of the cell cycle arrest kinase Chk2, indicating activation of the checkpoint via the ATM/Chk2 pathway, and increases mtDNA content independently of TFAM, a regulator of mtDNA copy number. Cell-cycle arrest did not have a consistent effect on mtDNA level: knockdown of cell cycle regulators PLK1 (polo-like kinase), MCM2, or MCM3 gave rise, respectively, to decreased, increased, or almost unchanged mtDNA levels. Therefore, we concluded that the mtDNA content increase upon RRM3 knockdown is not a response to delay of cell cycle progression. Also, we observed that RRM3 knockdown increased the levels of reactive oxygen species (ROS); two ROS scavengers, N-acetyl cysteine and vitamin C, suppressed the mtDNA content increase. On the other hand, in RRM3 knockdown cells, we detected an increase in the frequency of the common 4977-bp mtDNA deletion, a major mtDNA deletion that can be induced by abnormal ROS generation, and is associated with a decline in mitochondrial genome integrity, aging, and various mtDNA-related disorders in humans. These results suggest that increase of the mitochondrial genome by TFAM-independent mtDNA replication is connected, via oxidative stress, with the ATM/Chk2 checkpoint activation in response to DNA damage, and is accompanied by generation of the common 4977-bp deletion.
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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