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Updated: Sep 23, 2025

A Doxorubicin-Induced Murine Model of Dilated Cardiomyopathy In Vivo
Published on: May 16, 2020
Dimethyl Fumarate Ameliorates Doxorubicin-Induced Cardiotoxicity By Activating the Nrf2 Pathway
Xiaoliang Hu1, Cheng Li1, Qian Wang1
1Department of Cardiology, Xinhua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Abstract:
Doxorubicin (DOX) is limited in clinical application because of its cardiotoxicity. Oxidative stress and apoptosis are crucial in DOX-induced cardiac injury. Dimethyl fumarate (DMF) is an FDA-approved oral drug with powerful effects to reduce oxidative stress and apoptosis through the Nrf2 pathway. This study was aimed to determine whether DMF can protect against DOX-induced cardiac injury. We used both neonatal rat cardiomyocytes (NRCMs) in vitro and DOX-induced cardiac toxicity in vivo to explore the effects of DMF. The results showed that DMF significantly improved cell viability and morphology in NRCMs. In addition, DMF alleviated DOX-induced cardiac injury in rats, as evidenced by decreased CK-MB, LDH levels, improved survival rates, cardiac function, and pathological changes. Moreover, DMF significantly inhibited cardiac oxidative stress by reducing MDA levels and increasing GSH, SOD, and GSH-px levels. And DMF also inhibited DOX-induced cardiac apoptosis by modulating Bax, Bcl-2 and cleaved caspase-3 expression. Moreover, DMF exerted its protective effects against DOX by promoting Nrf2 nuclear translocation, which activated its downstream antioxidant gene Hmox1. Silencing of Nrf2 attenuated the protective effects of DMF in NRCMs as manifested by increased intracellular oxidative stress, elevated apoptosis levels, and decreased cell viability. In addition, DMF showed no protective effects on the viability of DOX-treated tumor cells, which suggested that DMF does not interfere with the antitumor effect of DOX in vitro. In conclusion, our data confirmed that DMF alleviated DOX-induced cardiotoxicity by regulating oxidative stress and apoptosis through the Nrf2 pathway. DMF may serve as a new candidate to alleviate DOX-related cardiotoxicity in the future.
Insights
Dimethyl fumarate (DMF) protects against Doxorubicin (DOX)-induced heart damage by reducing oxidative stress and apoptosis via the Nrf2 pathway. DMF shows promise for mitigating DOX cardiotoxicity without affecting its anti-tumor efficacy.
Area of Science:
- Cardiology
- Pharmacology
- Toxicology
Background:
- Doxorubicin (DOX) chemotherapy is limited by severe cardiotoxicity.
- Oxidative stress and apoptosis are key mechanisms in DOX-induced cardiac injury.
- Dimethyl fumarate (DMF), an FDA-approved drug, activates the Nrf2 pathway to combat oxidative stress and apoptosis.
Purpose of the Study:
- To investigate the protective effects of Dimethyl fumarate (DMF) against Doxorubicin (DOX)-induced cardiotoxicity.
- To elucidate the underlying mechanisms involving oxidative stress, apoptosis, and the Nrf2 pathway.
Main Methods:
- In vitro studies using neonatal rat cardiomyocytes (NRCMs) exposed to DOX.
- In vivo studies using a rat model of DOX-induced cardiac toxicity.
- Assessment of cardiac function, oxidative stress markers (MDA, GSH, SOD, GSH-px), apoptosis markers (Bax, Bcl-2, cleaved caspase-3), and Nrf2 pathway activation.
- Nrf2 gene silencing was performed to confirm its role.
Main Results:
- DMF significantly improved NRCM viability and morphology.
- DMF alleviated DOX-induced cardiac injury in rats, improving survival, cardiac function, and reducing cardiac biomarkers (CK-MB, LDH).
- DMF reduced cardiac oxidative stress and apoptosis, and promoted Nrf2 nuclear translocation and downstream gene expression (Hmox1).
- Nrf2 silencing abolished DMF's protective effects.
- DMF did not affect the viability of DOX-treated tumor cells in vitro.
Conclusions:
- Dimethyl fumarate (DMF) effectively alleviates Doxorubicin (DOX)-induced cardiotoxicity.
- The protective mechanism involves the regulation of oxidative stress and apoptosis through the Nrf2 pathway.
- DMF is a potential therapeutic candidate to mitigate DOX-related cardiotoxicity without compromising its anti-cancer effects.
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