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抗肿瘤活性咪唑并吖啶酮 C-1311 的代谢电化学模拟及药物代谢反应的计算预测。

Electrochemical simulation of metabolism for antitumor-active imidazoacridinone C-1311 and in silico prediction of drug metabolic reactions.

机构信息

Department of Pharmaceutical Technology and Biochemistry, Faculty of Chemistry, Gdańsk University of Technology, Gabriela Narutowicza St. 11/12, Gdańsk, 80-233, Poland.

Department of Organic Chemistry, Faculty of Pharmacy, Jagiellonian University, Medyczna St. 9, Kraków, 30-688, Poland.

出版信息

J Pharm Biomed Anal. 2019 May 30;169:269-278. doi: 10.1016/j.jpba.2019.03.017. Epub 2019 Mar 9.

Abstract

The metabolism of antitumor-active 5-diethylaminoethylamino-8-hydroxyimidazoacridinone (C-1311) has been investigated widely over the last decade but some aspects of molecular mechanisms of its metabolic transformation are still not explained. In the current work, we have reported a direct and rapid analytical tool for better prediction of C-1311 metabolism which is based on electrochemistry (EC) coupled on-line with electrospray ionization mass spectrometry (ESI-MS). Simulation of the oxidative phase I metabolism of the compound was achieved in a simple electrochemical thin-layer cell consisting of three electrodes (ROXY, Antec Leyden, the Netherlands). We demonstrated that the formation of the products of N-dealkylation reactions can be easily simulated using purely instrumental approach. Newly reported products of oxidative transformations like hydroxylated or oxygenated derivatives become accessible. Structures of the electrochemically generated metabolites were elucidated on the basis of accurate mass ion data and tandem mass spectrometry experiments. In silico prediction of main sites of C-1311 metabolism was performed using MetaSite software. The compound was evaluated for cytochrome P450 1A2-, 3A4-, and 2D6-mediated reactions. The results obtained by EC were also compared and correlated with those of reported earlier for conventional in vitro enzymatic studies in the presence of liver microsomes and in the model peroxidase system. The in vitro experimental approach and the in silico metabolism findings showed a quite good agreement with the data from EC/ESI-MS analysis. Thus, we conclude here that the electrochemical technique provides the promising platform for the simple evaluation of drug metabolism and the reaction mechanism studies, giving first clues to the metabolic transformation of pharmaceuticals in the human body.

摘要

过去十年中,人们广泛研究了抗肿瘤活性的 5-二乙氨基乙基氨基-8-羟基咪唑并[4,5-h]喹啉酮(C-1311)的代谢,但该化合物代谢转化的某些分子机制仍未得到解释。在目前的工作中,我们报道了一种直接且快速的分析工具,可更好地预测 C-1311 代谢,该工具基于电化学(EC)与电喷雾电离质谱(ESI-MS)在线联用。在由三个电极(ROXY、Antec Leyden,荷兰)组成的简单电化学薄层池中模拟了该化合物的氧化 I 期代谢。我们证明,使用纯仪器方法可以轻松模拟 N-脱烷基反应产物的形成。新报道的氧化转化产物,如羟化或氧化衍生物,也可以被获得。基于精确质量离子数据和串联质谱实验,对电生成代谢物的结构进行了阐明。使用 MetaSite 软件对 C-1311 代谢的主要部位进行了计算机预测。评估了该化合物对细胞色素 P450 1A2、3A4 和 2D6 介导的反应的作用。通过 EC 获得的结果与之前在存在肝微粒体和模型过氧化物酶系统的情况下进行的常规体外酶学研究的结果进行了比较和关联。体外实验方法和计算机代谢发现与 EC/ESI-MS 分析的数据非常吻合。因此,我们在此得出结论,电化学技术为简单评估药物代谢和反应机制研究提供了有前景的平台,为了解药物在人体内的代谢转化提供了初步线索。

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