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Updated: Jun 14, 2025

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Mitochondrial DNA is a sensitive surrogate and oxidative stress target in oral cancer cells
Jingyu Tan1, Xinlin Dong1, Haiwen Liu1,2
1The First Affiliated Hospital of Jinzhou Medical University, Jinzhou, China.
Abstract:
Cellular oxidative stress mediated by intrinsic and/or extrinsic reactive oxygen species (ROS) is associated with disease pathogenesis. Oxidative DNA damage can naturally be substituted by mitochondrial DNA (mtDNA), leading to base lesion/strand break formation, copy number changes, and mutations. In this study, we devised a single test for the sensitive quantification of acute mtDNA damage, repair, and copy number changes using supercoiling-sensitive quantitative PCR (ss-qPCR) and examined how oxidative stress-related mtDNA damage responses occur in oral cancer cells. We observed that exogenous hydrogen peroxide (H2O2) induced dynamic mtDNA damage responses, as reflected by early structural DNA damage, followed by DNA repair if damage did not exceed a particular threshold. However, high oxidative stress levels induced persistent mtDNA damage and caused a 5-30-fold depletion in mtDNA copy numbers over late responses. This dramatic depletion was associated with significant growth arrest and apoptosis, suggesting persistent functional consequences. Moreover, oral cancer cells responded differentially to oxidative injury when compared with normal cells, and different ROS species triggered different biological consequences under stress conditions. In conclusion, we developed a new method for the sensitive detection of mtDNA damage and copy number changes, with exogenous H2O2 inducing dynamic mtDNA damage responses associated with functional changes in stressed cancer cells. Finally, our method can help characterize oxidative DNA damage in cancer and other human diseases.
Insights
Mitochondrial DNA (mtDNA) damage from oxidative stress causes cell death in oral cancer. A new ss-qPCR test detects this damage and repair, revealing how cells respond to reactive oxygen species (ROS).
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Cellular oxidative stress, driven by reactive oxygen species (ROS), is implicated in disease pathogenesis.
- Mitochondrial DNA (mtDNA) is susceptible to oxidative damage, leading to lesions, strand breaks, copy number alterations, and mutations.
Purpose of the Study:
- To develop a sensitive method for quantifying acute mtDNA damage, repair, and copy number changes.
- To investigate oxidative stress-induced mtDNA damage responses in oral cancer cells.
Main Methods:
- Development of a single, sensitive test using supercoiling-sensitive quantitative PCR (ss-qPCR).
- Exposure of oral cancer cells to exogenous hydrogen peroxide (H2O2) to induce oxidative stress.
- Quantification of mtDNA damage, repair dynamics, and copy number variations.
Main Results:
- Exogenous H2O2 triggered dynamic mtDNA damage responses, including early structural damage and subsequent repair below a damage threshold.
- High oxidative stress led to persistent mtDNA damage and a 5-30 fold depletion in mtDNA copy numbers.
- Significant growth arrest and apoptosis were observed, linked to persistent mtDNA damage and functional consequences.
Conclusions:
- A novel ss-qPCR method enables sensitive detection of mtDNA damage and copy number changes.
- Oxidative stress dynamically impacts mtDNA in oral cancer cells, leading to functional consequences like apoptosis.
- Oral cancer cells exhibit differential responses to oxidative injury compared to normal cells, with varying ROS species eliciting distinct outcomes.
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