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.

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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