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Updated: Aug 14, 2026

A Doxorubicin-induced Cardiomyopathy Model in Adult Zebrafish
Published on: June 7, 2018
Tissue-specific mtDNA lesions and radical-associated mitochondrial dysfunction in human hearts exposed to doxorubicin
Dirk Lebrecht1, Aikaterini Kokkori, Uwe-Peter Ketelsen
1Department of Rheumatology, Medizinische Universitätsklinik, Freiburg, Germany.
Abstract:
Doxorubicin causes a chronic cardiomyopathy. Although the exact pathogenesis is unknown, recent animal data suggest that somatically acquired alterations of mitochondrial DNA (mtDNA) and concomitant mitochondrial dysfunction play an important role in its onset. In this study, skeletal and myocardial muscles were examined from human autopsies. Compared to controls (n = 8), doxorubicin-exposed hearts (n = 6) showed low absolute enzyme activity of mtDNA-encoded nicotinamide adenine dinucleotide hydrogen dehydrogenase (NADH DH, 79% residual activity, p = 0.03) and cytochrome c oxidase (COX, 59% residual activity, p < 0.001), but not of succinate dehydrogenase (SDH), which is encoded exclusively by nuclear DNA. NADH DH/SDH and COX/SDH ratios were 37% (p < 0.001) and 27% (p < 0.001) of controls. Expression of the mtDNA-encoded subunit II of COX was reduced (82%, p = 0.04), compared to its unchanged nucleus-encoded subunit IV. MtDNA-content was diminished (56%, p = 0.02), but the 'common' mtDNA-deletion was increased (9.2-fold, p = 0.004). Doxorubicin-exposed hearts harboured numerous additional mtDNA rearrangements lacking direct repeats. They contained elevated levels of malondialdehyde (MDA) (p = 0.006, compared to controls), which correlated inversely with the COX/SDH ratio (r = -0.45, p = 0.02) and the mtDNA-content (r = -0.75, p = 0.002), and correlated positively with the levels of the 'common' deletion (r = 0.80, p < 0.001). Doxorubicin-exposed hearts also contained the highest levels of superoxide (p < 0.001, compared to controls), which correlated negatively with the mtDNA-encoded respiratory chain activities, such as the COX/SDH ratio (r = -0.57, p = 0.02) and the NADH/SDH ratio (r = -0.52, p = 0.04), as well as with the mtDNA content (r = -0.69, p = 0.003), and correlated positively with the frequency of the 'common' deletion (r = 0.76, p < 0.001) and the MDA levels (r = 0.86, p < 0.001). Doxorubicin-exposed hearts contained electron-dense deposits within mitochondria. Hearts exposed to other anthracyclines (n = 6) or skeletal muscle (all groups) had no mitochondrial dysfunction. Doxorubicin, unlike other anthracyclines, augments lipid peroxidation, induces mtDNA mutations and decreases mtDNA content in human hearts. These lesions have an impact on mitochondrial function and could be of importance in the pathogenesis of clinical cardiomyopathy.
Insights
Doxorubicin causes heart damage by altering mitochondrial DNA (mtDNA) and impairing mitochondrial function. This study reveals doxorubicin-induced mtDNA mutations and reduced mtDNA content in human hearts, contributing to cardiomyopathy.
Area of Science:
- Cardiology
- Mitochondrial Medicine
- Pharmacology
Background:
- Doxorubicin is known to induce chronic cardiomyopathy, a serious side effect.
- Emerging evidence suggests that acquired alterations in mitochondrial DNA (mtDNA) and subsequent mitochondrial dysfunction are key contributors to its pathogenesis.
Purpose of the Study:
- To investigate the role of mitochondrial DNA alterations and dysfunction in doxorubicin-induced cardiomyopathy in human hearts.
- To compare the effects of doxorubicin with other anthracyclines and examine skeletal muscle.
Main Methods:
- Analysis of skeletal and myocardial muscle tissues from human autopsies of doxorubicin-exposed individuals and controls.
- Measurement of mitochondrial enzyme activities (NADH DH, COX, SDH), mtDNA content, mtDNA deletions, malondialdehyde (MDA), and superoxide levels.
- Examination of mitochondrial ultrastructure via electron microscopy.
Main Results:
- Doxorubicin-exposed hearts exhibited significantly reduced activity of mtDNA-encoded enzymes (NADH DH, COX) but not nuclear DNA-encoded SDH, indicating specific mitochondrial respiratory chain defects.
- Significant decrease in mtDNA content, a marked increase in the 'common' mtDNA deletion, and numerous other mtDNA rearrangements were observed in doxorubicin-exposed hearts.
- Elevated levels of oxidative stress markers (malondialdehyde and superoxide) correlated with mtDNA damage and reduced mitochondrial function. Electron-dense deposits were found within mitochondria.
Conclusions:
- Doxorubicin, unlike other anthracyclines, induces significant lipid peroxidation, mtDNA mutations, and decreased mtDNA content in human hearts.
- These mtDNA lesions and resultant mitochondrial dysfunction are strongly implicated in the pathogenesis of doxorubicin-induced clinical cardiomyopathy.
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