Cardiotoxicity of cyclophosphamide’s metabolites: an in vitro metabolomics approach in AC16 human cardiomyocytes

心脏毒性 丙烯醛 药理学 前药 环磷酰胺 谷胱甘肽 毒性 化学 代谢组学 细胞毒性 代谢组 代谢物 细胞毒性T细胞 生物化学 体外 生物 医学 内科学 化疗 催化作用 有机化学 色谱法
作者
Flávio Dionísio,Ana Margarida Araújo,Margarida Duarte‐Araújo,Maria de Lourdes Bastos,Paula Guedes de Pinho,Félix Carvalho,Vera Marisa Costa
出处
期刊:Archives of Toxicology [Springer Nature]
卷期号:96 (2): 653-671 被引量:21
标识
DOI:10.1007/s00204-021-03204-y
摘要

Cyclophosphamide is a widely used anticancer and immunosuppressive prodrug that unfortunately causes severe adverse effects, including cardiotoxicity. Although the exact cardiotoxic mechanisms are not completely understood, a link between cyclophosphamide’s pharmacologically active metabolites, namely 4-hydroxycyclophosphamide and acrolein, and the toxicity observed after the administration of high doses of the prodrug is likely. Therefore, the objective of this study is to shed light on the cardiotoxic mechanisms of cyclophosphamide and its main biotransformation products, through classic and metabolomics studies. Human cardiac proliferative and differentiated AC16 cells were exposed to several concentrations of the three compounds, determining their basic cytotoxic profile and preparing the next study, using subtoxic and toxic concentrations for morphological and biochemical studies. Finally, metabolomics studies were applied to cardiac cells exposed to subtoxic concentrations of the aforementioned compounds to determine early markers of damage. The cytotoxicity, morphological and biochemical assays showed that 4-hydroxycyclophosphamide and acrolein induced marked cardiotoxicity at µM concentrations (lower than 5 µM), being significantly lower than the ones observed for cyclophosphamide (higher than 2500 μM). Acrolein led to increased levels of ATP and total glutathione on proliferative cells at 25 µM, while no meaningful changes were observed in differentiated cells. Higher levels of carbohydrates and decreased levels of fatty acids and monoacylglycerols indicated a metabolic cardiac shift after exposure to cyclophosphamide’s metabolites, as well as a compromise of precursor amino acids used in the synthesis of glutathione, seen in proliferative cells’ metabolome. Overall, differences in cytotoxic mechanisms were observed for the two different cellular states used and for the three molecules, which should be taken into consideration in the study of cyclophosphamide cardiotoxic mechanisms.
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