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A Doxorubicin-Induced Murine Model of Dilated Cardiomyopathy In Vivo
Published on: May 16, 2020
Rac1-mediated cardiac damage causes diastolic dysfunction in a mouse model of subacute doxorubicin-induced
Jan Ohlig1, Christian Henninger2, Simone Zander3
1Medical Faculty, Division of Cardiology, Pneumology and Angiology, Heinrich Heine University Duesseldorf, Moorenstrasse 5, 40225, Duesseldorf, Germany.
Abstract:
The anticancer efficacy of anthracyclines is limited by congestive heart failure. Clinically established markers of early onset of cardiotoxicity following anthracycline treatment and preventive measures are missing. Although statins are reported to alleviate anthracycline-induced cardiotoxicity in vivo, the molecular mechanisms involved remain elusive. In vitro data point to Rac1 as major target of the cytoprotective statin effects. Here we investigated whether specific inhibition of Rac1 by NSC23766 is as effective as lovastatin in preventing subacute cardiotoxicity following doxorubicin treatment. C57BL/6 mice were treated over 3 weeks with multiple low doses of doxorubicin (6 × 3 mg/kg BW, i.p.) and the level of DNA damage, apoptosis and regenerative proliferation as well as pro-inflammatory, pro-fibrotic and oxidative stress responses were investigated. Moreover, heart function was monitored by echocardiography. Doxorubicin induced subacute cardiotoxicity which was reflected on the level of residual DNA damage, frequency of apoptotic and mitotic cells as well as elevated mRNA expression of markers of heart failure, remodeling and mitochondrial biogenesis. These molecular markers of cardiotoxicity were mitigated to a similar extent by co-treatment with either lovastatin (10 mg/kg BW, p.o.) or NSC23766 (5 mg/kg BW, i.p.) three times a week. Moreover, doxorubicin caused diastolic dysfunction as reflected by increased E-wave acceleration time (EAT), which again was prevented by pharmacological inhibition of Rac1. Inhibition of Rac1 signaling is of major relevance for the cardioprotective effects of lovastatin in the context of anthracycline-induced cardiotoxicity. Moreover, EAT is a useful marker of subacute cardiotoxicity caused by persisting harmful effects of doxorubicin.
Insights
Statins and Rac1 inhibition prevent doxorubicin-induced cardiotoxicity by reducing DNA damage and apoptosis. Rac1 signaling is key to statins' cardioprotective effects against anthracycline treatment.
Area of Science:
- Cardiology
- Pharmacology
- Molecular Biology
Background:
- Anthracycline chemotherapy causes cardiotoxicity, limiting its use.
- Current methods lack early detection markers and preventive strategies for anthracycline-induced heart failure.
- Statins show promise in preventing cardiotoxicity, but their mechanisms are unclear, with Rac1 identified as a potential target.
Purpose of the Study:
- To investigate if specific Rac1 inhibition with NSC23766 can prevent doxorubicin-induced cardiotoxicity.
- To compare the efficacy of Rac1 inhibition with lovastatin in mitigating subacute cardiotoxicity.
- To explore the role of Rac1 signaling in the cardioprotective effects of statins.
Main Methods:
- Mice received multiple low doses of doxorubicin over three weeks.
- Evaluated DNA damage, apoptosis, proliferation, and inflammatory/fibrotic/oxidative stress markers.
- Monitored heart function using echocardiography, focusing on E-wave acceleration time (EAT).
Main Results:
- Doxorubicin induced subacute cardiotoxicity, evidenced by DNA damage, apoptosis, and altered gene expression.
- Co-treatment with lovastatin or NSC23766 significantly reduced these molecular markers of cardiotoxicity.
- Doxorubicin-induced diastolic dysfunction (increased EAT) was prevented by Rac1 inhibition.
Conclusions:
- Rac1 inhibition is crucial for the cardioprotective effects of lovastatin against anthracycline cardiotoxicity.
- EAT serves as a valuable marker for detecting subacute cardiotoxicity.
- Targeting Rac1 signaling offers a potential strategy for preventing chemotherapy-induced heart damage.

