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Drug-induced mitochondrial dysfunction and cardiotoxicity

American Journal of Physiology-Heart and Circulatory Physiology · 2015 · Vol. 309(9) · pp. H1453–H1467
Zoltán V. VargaPéter FerdinandyLucas LiaudetPál Pacher

Abstract

Mitochondria has an essential role in myocardial tissue homeostasis; thus deterioration in mitochondrial function eventually leads to cardiomyocyte and endothelial cell death and consequent cardiovascular dysfunction. Several chemical compounds and drugs have been known to directly or indirectly modulate cardiac mitochondrial function, which can account both for the toxicological and pharmacological properties of these substances. In many cases, toxicity problems appear only in the presence of additional cardiovascular disease conditions or develop months/years following the exposure, making the diagnosis difficult. Cardiotoxic agents affecting mitochondria include several widely used anticancer drugs [anthracyclines (Doxorubicin/Adriamycin), cisplatin, trastuzumab (Herceptin), arsenic trioxide (Trisenox), mitoxantrone (Novantrone), imatinib (Gleevec), bevacizumab (Avastin), sunitinib (Sutent), and sorafenib (Nevaxar)], antiviral compound azidothymidine (AZT, Zidovudine) and several oral antidiabetics [e.g., rosiglitazone (Avandia)]. Illicit drugs such as alcohol, cocaine, methamphetamine, ecstasy, and synthetic cannabinoids (spice, K2) may also induce mitochondria-related cardiotoxicity. Mitochondrial toxicity develops due to various mechanisms involving interference with the mitochondrial respiratory chain (e.g., uncoupling) or inhibition of the important mitochondrial enzymes (oxidative phosphorylation, Szent-Györgyi-Krebs cycle, mitochondrial DNA replication, ADP/ATP translocator). The final phase of mitochondrial dysfunction induces loss of mitochondrial membrane potential and an increase in mitochondrial oxidative/nitrative stress, eventually culminating into cell death. This review aims to discuss the mechanisms of mitochondrion-mediated cardiotoxicity of commonly used drugs and some potential cardioprotective strategies to prevent these toxicities.

Chemotherapy-induced cardiotoxicity and mitigationElectron Spin Resonance StudiesCancer Treatment and PharmacologyCardiotoxicityPharmacologyMitochondrionMitochondrial toxicityMedicineMitochondrial fissionChemistryToxicityBiochemistryInternal medicine

MeSH terms

Antineoplastic AgentsAntiviral AgentsHumansHypoglycemic AgentsMitochondria, HeartCardiomyopathiesIllicit DrugsOxidative StressMitochondrial DiseasesCardiotoxicity
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