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Updated: Aug 9, 2026

A Doxorubicin-induced Cardiomyopathy Model in Adult Zebrafish
Published on: June 7, 2018
DNA damage is an early event in doxorubicin-induced cardiac myocyte death
Thomas L'Ecuyer1, Sanjeev Sanjeev, Ronald Thomas
1Department of Pediatrics, Institute of Environmental Health Sciences, Detroit, MI 48201, USA. thlecuye@med.wayne.edu
Abstract:
Anthracyclines are antitumor agents the main clinical limitation of which is cardiac toxicity. The mechanism of this cardiotoxicity is thought to be related to generation of oxidative stress, causing lethal injury to cardiac myocytes. Although protein and lipid oxidation have been documented in anthracycline-treated cardiac myocytes, DNA damage has not been directly demonstrated. This study was undertaken to determine whether anthracyclines induce cardiac myocyte DNA damage and whether this damage is linked to a signaling pathway culminating in cell death. H9c2 cardiac myocytes were treated with the anthracycline doxorubicin at clinically relevant concentrations, and DNA damage was assessed using the alkaline comet assay. Doxorubicin induced DNA damage, as shown by a significant increase in the mean tail moment above control, an effect ameliorated by inclusion of a free radical scavenger. Repair of DNA damage was incomplete after doxorubicin treatment in contrast to the complete repair observed in H2O2-treated myocytes after removal of the agent. Immunoblot analysis revealed that p53 activation occurred subsequent in time to DNA damage. By a fluorescent assay, doxorubicin induced loss of mitochondrial membrane potential after p53 activation. Chemical inhibition of p53 prevented doxorubicin-induced cell death and loss of mitochondrial membrane potential without preventing DNA damage, indicating that DNA damage was proximal in the events leading from doxorubicin treatment to cardiac myocyte death. Specific doxorubicin-induced DNA lesions included oxidized pyrimidines and 8-hydroxyguanine. DNA damage therefore appears to play an important early role in anthracycline-induced lethal cardiac myocyte injury through a pathway involving p53 and the mitochondria.
Insights
Anthracyclines like doxorubicin cause cardiac myocyte DNA damage, leading to cell death. This DNA damage activates p53 and mitochondrial dysfunction, contributing to cardiotoxicity in cancer patients.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- Anthracyclines are vital antitumor drugs, but their use is limited by cardiotoxicity.
- Oxidative stress is implicated in anthracycline-induced cardiac injury, affecting proteins and lipids.
- Direct evidence for DNA damage in anthracycline cardiotoxicity was previously lacking.
Purpose of the Study:
- To investigate if anthracyclines induce DNA damage in cardiac myocytes.
- To determine if this DNA damage triggers a cell death signaling pathway.
Main Methods:
- H9c2 cardiac myocytes were treated with doxorubicin.
- DNA damage was assessed using the alkaline comet assay.
- p53 activation and mitochondrial membrane potential were analyzed via immunoblotting and fluorescent assays.
Main Results:
- Doxorubicin induced significant DNA damage, including oxidized pyrimidines and 8-hydroxyguanine.
- DNA repair was incomplete after doxorubicin treatment.
- p53 activation followed DNA damage, leading to mitochondrial dysfunction and cell death. Inhibiting p53 blocked cell death but not DNA damage.
Conclusions:
- Anthracycline-induced DNA damage is an early event in cardiac myocyte death.
- The pathway involves DNA damage, p53 activation, and mitochondrial disruption.
- Targeting DNA damage or the p53 pathway may mitigate anthracycline cardiotoxicity.
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