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Updated: May 19, 2026

A Doxorubicin-Induced Murine Model of Dilated Cardiomyopathy In Vivo
Published on: May 16, 2020
Effects of MnDPDP and ICRF-187 on Doxorubicin-Induced Cardiotoxicity and Anticancer Activity
Tino Kurz1, Derek Grant, Rolf Gg Andersson
1Divison of Drug Research/Pharmacology, Department of Medicine and Health Sciences, Faculty of Medicine, University of Linköping, Linköping, Sweden.
Abstract:
Oxidative stress participates in doxorubicin (Dx)-induced cardiotoxicity. The metal complex MnDPDP and its metabolite MnPLED possess SOD-mimetic activity, DPDP and PLED have, in addition, high affinity for iron. Mice were injected intravenously with MnDPDP, DPDP, or dexrazoxane (ICRF-187). Thirty minutes later, mice were killed, the left atria were hung in organ baths and electrically stimulated, saline or Dx was added, and the contractility was measured for 60 minutes. In parallel experiments, 10 µM MnDPDP or MnPLED was added directly into the organ bath. The effect of MnDPDP on antitumor activity of Dx against two human tumor xenografts (MX-1 and A2780) was investigated. The in vitro cytotoxic activity was studied by co-incubating A2780 cells with MnDPDP, DPDP, and/or Dx. Dx caused a marked reduction in contractile force. In vivo treatment with MnDPDP and ICRF-187 attenuated the negative effect of Dx. When added directly into the bath, MnDPDP did not protect, whereas MnPLED attenuated the Dx effect by approximately 50%. MnDPDP or ICRF-187 did not interfere negatively with the anti-tumor activity of Dx, either in vivo or in vitro. Micromolar concentrations of DPDP but not MnDPDP displayed an in vitro cytotoxic activity against A2780 cells. The present results show that MnDPDP, after being metabolized to MnPLED, protects against acute Dx cardiotoxicity. Both in vivo and in vitro experiments show that cardioprotection takes place without interfering negatively with the anticancer activity of Dx. Furthermore, the results suggest that the previously described cytotoxic in vivo activity of MnDPDP is an inherent property of DPDP.
Insights
The metal complex MnDPDP protects against doxorubicin (Dx) cardiotoxicity by metabolizing into MnPLED. This cardioprotection occurs without negatively impacting Dx
Area of Science:
- Cardiovascular Pharmacology
- Medicinal Chemistry
- Oncology
Background:
- Doxorubicin (Dx) is a potent chemotherapy agent with dose-limiting cardiotoxicity.
- Oxidative stress is a key mechanism in Dx-induced cardiotoxicity.
- Metal complexes with SOD-mimetic and iron-chelating properties are explored for cardioprotection.
Purpose of the Study:
- To evaluate the cardioprotective effects of the metal complex MnDPDP against Dx-induced cardiotoxicity.
- To investigate whether MnDPDP interferes with the antitumor activity of Dx.
- To elucidate the role of MnDPDP metabolism in its protective effects.
Main Methods:
- In vivo studies using mice treated with MnDPDP, DPDP, or dexrazoxane (ICRF-187) followed by Dx administration.
- Ex vivo assessment of left atrial contractility in organ baths.
- In vitro studies evaluating the effect of MnDPDP and its metabolite MnPLED on Dx-induced cardiotoxicity and antitumor activity.
Main Results:
- In vivo treatment with MnDPDP and ICRF-187 attenuated Dx-induced cardiotoxicity.
- MnPLED, a metabolite of MnDPDP, demonstrated significant cardioprotective effects when added directly to organ baths.
- MnDPDP and ICRF-187 did not compromise the in vivo or in vitro antitumor efficacy of Dx.
- DPDP, but not MnDPDP, exhibited in vitro cytotoxic activity against A2780 cancer cells.
Conclusions:
- MnDPDP provides cardioprotection against acute doxorubicin toxicity through its metabolite MnPLED.
- Cardioprotection by MnDPDP is achieved without compromising the anticancer effectiveness of doxorubicin.
- The cytotoxic activity observed in vivo for MnDPDP is attributed to its metabolite DPDP.
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