首页> 外文期刊>Drug Metabolism and Disposition: The Biological Fate of Chemicals >Mutual inhibition between quinine and etoposide by human liver microsomes. Evidence for cytochrome P4503A4 involvement in their major metabolic pathways.
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Mutual inhibition between quinine and etoposide by human liver microsomes. Evidence for cytochrome P4503A4 involvement in their major metabolic pathways.

机译:人肝微粒体对奎宁和依托泊苷之间的相互抑制。细胞色素P4503A4参与其主要代谢途径的证据。

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The mutual inhibition between quinine and etoposide with their major metabolic pathways (i.e. quinine 3-hydroxylation and etoposide 3'-demethylation) was examined in vitro by human liver microsomes. Etoposide inhibited quinine 3-hydroxylation in a concentration-dependent manner with a mean IC50 of 65 microM. The mean maximum inhibition by etoposide (100 micro) of quinine 3-hydroxylation was about 60%. Similarly, etoposide 3'-demethylation was inhibited by quinine in a concentration-related manner with a mean IC50 value of 90 microM. The mean maximum inhibition by quinine (100 M) of etoposide 3'-demethylation was about 52%. An excellent correlation (r = 0.947, p < 0.01) between quinine 3-hydroxylase and etoposide 3'-demethylase activities in six different human liver microsomes was observed. Two inhibitors of CYP3A4, ketoconazole (1 microM) and troleandomycin (100 microM), inhibited quinine 3-hydroxylation by about 90% and 80%, and etoposide 3'-demethylation by about 75% and 65%, respectively. We conclude that quinine and etoposide mutually inhibit the metabolism of each other, consistent with the previous finding that CYP3A4 catalyzes the metabolism of both substrates.
机译:在体外通过人肝微粒体检查了奎宁和依托泊苷之间的相互作用及其主要代谢途径(即奎宁3-羟基化和依托泊苷3'-去甲基化)。依托泊苷以浓度依赖性方式抑制奎宁3-羟基化,平均IC50为65 microM。依托泊苷(100微克)对奎宁3-羟基化的平均最大抑制作用约为60%。相似地,奎宁以浓度相关的方式抑制依托泊苷3'-去甲基化,IC5​​0平均值为90 microM。奎宁(100 M)对依托泊苷3'-去甲基化的平均最大抑制作用约为52%。在六个不同的人肝微粒体中,观察到奎宁3-羟化酶与依托泊苷3'-脱甲基酶活性之间的极好的相关性(r = 0.947,p <0.01)。 CYP3A4的两种抑制剂酮康唑(1 microM)和曲安霉素(100 microM)分别抑制奎宁3-羟基化约90%和80%,以及依托泊苷3'-去甲基化约75%和65%。我们得出结论,奎宁和依托泊苷相互抑制彼此的代谢,这与先前的发现CYP3A4催化两种底物的代谢是一致的。

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