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Updated: Jun 25, 2025

A Doxorubicin-Induced Murine Model of Dilated Cardiomyopathy In Vivo
Published on: May 16, 2020
Anthracycline Cardiotoxicity Induces Progressive Changes in Myocardial Metabolism and Mitochondrial Quality Control:
Anabel Díaz-Guerra1,2, Rocío Villena-Gutiérrez1, Agustín Clemente-Moragón1,2
1Centro Nacional de Investigaciones Cardiovasculares, Madrid, Spain.
Background:
Anthracycline-induced cardiotoxicity (AIC) debilitates quality of life in cancer survivors. Serial characterizations are lacking of the molecular processes occurring with AIC.
Objectives:
The aim of this study was to characterize AIC progression in a mouse model from early (subclinical) to advanced heart failure stages, with an emphasis on cardiac metabolism and mitochondrial structure and function.
Methods:
CD1 mice received 5 weekly intraperitoneal doxorubicin injections (5 mg/kg) and were followed by serial echocardiography for 15 weeks. At 1, 9, and 15 weeks after the doxorubicin injections, mice underwent fluorodeoxyglucose positron emission tomography, and hearts were extracted for microscopy and molecular analysis.
Results:
Cardiac atrophy was evident at 1 week post-doxorubicin (left ventricular [LV] mass 117 ± 26 mg vs 97 ± 25 mg at baseline and 1 week, respectively; P < 0.001). Cardiac mass nadir was observed at week 3 post-doxorubicin (79 ± 16 mg; P = 0.002 vs baseline), remaining unchanged thereafter. Histology confirmed significantly reduced cardiomyocyte area (167 ± 19 μm2 in doxorubicin-treated mice vs 211 ± 26 μm2 in controls; P = 0.004). LV ejection fraction declined from week 6 post-doxorubicin (49% ± 9% vs 61% ± 9% at baseline; P < 0.001) until the end of follow-up at 15 weeks (43% ± 8%; P < 0.001 vs baseline). At 1 week post-doxorubicin, when LV ejection fraction remained normal, reduced cardiac metabolism was evident from down-regulated markers of fatty acid oxidation and glycolysis. Metabolic impairment continued to the end of follow-up in parallel with reduced mitochondrial adenosine triphosphate production. A transient early up-regulation of nutrient-sensing and mitophagy markers were observed, which was associated with mitochondrial enlargement. Later stages, when mitophagy was exhausted, were characterized by overt mitochondrial fragmentation.
Conclusions:
Cardiac atrophy, global hypometabolism, early transient-enhanced mitophagy, biogenesis, and nutrient sensing constitute candidate targets for AIC prevention.
Insights
Anthracycline-induced cardiotoxicity causes heart failure in cancer survivors. This study reveals early cardiac atrophy, metabolic dysfunction, and mitochondrial changes, identifying potential targets for AIC prevention.
Area of Science:
- Cardiology
- Oncology
- Molecular Biology
- Mitochondrial Biology
Background:
- Anthracycline-induced cardiotoxicity (AIC) significantly impacts cancer survivor quality of life.
- There is a lack of detailed molecular characterization of AIC progression.
Purpose of the Study:
- To serially characterize the molecular progression of AIC in a mouse model.
- To investigate cardiac metabolism and mitochondrial structure/function changes during AIC development.
Main Methods:
- Mice received doxorubicin injections and underwent serial echocardiography.
- Cardiac metabolism was assessed using [18F]FDG-PET.
- Hearts were analyzed for histology, molecular markers, and mitochondrial morphology.
Main Results:
- Doxorubicin induced early cardiac atrophy and reduced cardiomyocyte size.
- Global cardiac hypometabolism was observed by week 1, preceding ejection fraction decline.
- Mitochondrial function declined, with early mitophagy and nutrient-sensing upregulation followed by fragmentation.
Conclusions:
- Early cardiac atrophy and metabolic dysfunction are key features of AIC.
- Transient mitophagy and nutrient sensing changes represent potential therapeutic targets.
- Mitochondrial fragmentation indicates later-stage damage in AIC.
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