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Updated: Sep 5, 2025

Comet Assay as an Indirect Measure of Systemic Oxidative Stress
Published on: May 22, 2015
Cooling of Cells and Organs Confers Extensive DNA Strand Breaks Through Oxidative Stress and ATP Depletion
Marziyeh Tolouee1, Koen D W Hendriks1, Fia Fia Lie1,2
1Department of Clinical Pharmacy and Pharmacology, University Medical Center Groningen, University of Groningen, Groningen, The Netherlands.
Abstract:
Cooling at 4°C is routinely used to lower metabolism and preserve cell and tissue integrity in laboratory and clinical settings, including organ transplantation. However, cooling and rewarming produce cell damage, attributed primarily to a burst of reactive oxygen species (ROS) upon rewarming. While DNA represents a highly vulnerable target of ROS, it is unknown whether cooling and/or rewarming produces DNA damage. Here, we show that cooling alone suffices to produce extensive DNA damage in cultured primary cells and cell lines, including double-strand breaks (DSBs), as shown by comet assay and pulsed-field gel electrophoresis. Cooling-induced DSB formation is time- and temperature-dependent and coincides with an excess production of ROS, rather than a decrease in ATP levels. Immunohistochemistry confirmed that DNA damage activates the DNA damage response marked by the formation of nuclear foci of proteins involved in DSB repair, γ-H2Ax, and 53BP1. Subsequent rewarming for 24 h fails to recover ATP levels and only marginally lowers DSB amounts and nuclear foci. Precluding ROS formation by dopamine and the hydroxychromanol, Sul-121, dose-dependently reduces DSBs. Finally, a standard clinical kidney transplant procedure, using cold static storage in UW preservation solution up to 24 h in porcine kidney, lowered ATP, increased ROS, and produced increasing amounts of DSBs with recruitment of 53BP1. Given that DNA repair is erroneous by nature, cooling-inflicted DNA damage may affect cell survival, proliferation, and genomic stability, significantly impacting cellular and organ function, with relevance in stem cell and transplantation procedures.
Insights
Cooling cells causes DNA damage, including double-strand breaks (DSBs), due to reactive oxygen species (ROS). This damage persists after rewarming and occurs during kidney transplantation, impacting cell function and genomic stability.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Hypothermia (cooling) is standard for preserving cells and tissues, like in organ transplantation.
- Rewarming after cooling is thought to cause cell damage via reactive oxygen species (ROS).
- The impact of cooling and rewarming on DNA integrity was previously unknown.
Purpose of the Study:
- To investigate if cooling or rewarming induces DNA damage.
- To determine the mechanisms behind cooling-induced DNA damage.
- To assess the relevance of cooling-induced DNA damage in a clinical transplantation model.
Main Methods:
- Comet assay and pulsed-field gel electrophoresis to detect DNA double-strand breaks (DSBs).
- Measurement of ATP levels and ROS production.
- Immunohistochemistry for DNA damage response markers (γ-H2Ax, 53BP1).
- Assessment of porcine kidneys after cold static storage.
Main Results:
- Cooling alone, independent of rewarming, causes significant time- and temperature-dependent DNA DSBs.
- Cooling-induced DNA damage is linked to increased ROS production, not decreased ATP.
- DNA damage response proteins (γ-H2Ax, 53BP1) were activated.
- Rewarming did not fully restore ATP levels or resolve DSBs.
- Antioxidants (dopamine, Sul-121) reduced cooling-induced DSBs.
- Porcine kidneys showed decreased ATP, increased ROS, and DSBs after cold storage.
Conclusions:
- Cooling induces DNA damage, primarily DSBs, via ROS, impacting cellular and organ function.
- This DNA damage is relevant to transplantation procedures and may affect cell survival and genomic stability.
- Further research is needed to mitigate cooling-induced DNA damage in clinical applications.
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