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Integration of Knowledge-Based Metabolic Predictions with Liquid Chromatography Data-Dependent Tandem Mass Spectrometry for Drug Metabolism Studies: Application to Studies on the Biotransformation of Indinavir

机译:基于知识的代谢预测与液相色谱数据相关串联质谱的药物代谢研究的集成:在茚地那韦生物转化研究中的应用

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Despite recent advances in the application of data-dependent liquid chromatography/tandem mass spectrometry (LC/MS/MS) to the identification of drug metabolites in complex biological matrixes, a prior knowledge of the likely routes of biotransformation of the therapeutic agent of interest greatly facilitates the detection and structural characterization of its metabolites. Thus, prediction of the [M+H]~(+) m/z values of expected metabolites allows for the construction of user-defined MS~(n) protocols that frequently reveal the presence of minor drug metabolites, even in the presence of a vast excess of coeluting endogenous constituents. However, this approach suffers from inherent user bias, as a result of which additional "survey scans" (e.g., precursor ion and constant neutral loss scans) are required to ensure detection of as many drugrelated components in the sample as possible. In the present study, a novel approach to this problem has been evaluated, in which knowledge-based predictions of metabolic pathways are first derived from a commercial database, the output from which is used to formulate a list-dependent LC/MS~(n) data acquisition protocol. Using indinavir as a model drug, a substructure similarity search on the MDL metabolism database with a similarity index of 60% yielded 188 "hits", pointing to the possible operation of two hydrolytic, two N-dealkylation, three N-glucuronidation, one N-methylation, and several aromatic and aliphatic oxidation pathways. Integration of this information with data-dependent LC/MS~(n) analysis using an ion trap mass spectrometer led to the identification of 18 metabolites of indinavir following incubation of the drug with human hepatic postmitochondrial preparations. This result was accomplished with only a single LC/MS~(n) run, representing significant savings in instrument use and operator time, and afforded an accurate view of the complex in vitro metabolic profile of this drug.
机译:尽管最近在依赖数据的液相色谱/串联质谱(LC / MS / MS)应用于复杂生物基质中药物代谢物鉴定方面取得了进展,但有关治疗药物可能发生生物转化的途径的先验知识还是非常多的有助于对其代谢产物的检测和结构表征。因此,对预期代谢物的[M + H]〜(+)m / z值进行预测,可以构建用户定义的MS〜(n)方案,该方案经常揭示出次要药物代谢物的存在,即使存在大量洗脱内源性成分。然而,这种方法遭受固有的用户偏见,结果,需要附加的“调查扫描”(例如,前体离子和恒定的中性损失扫描)以确保检测样品中尽可能多的药物相关成分。在本研究中,已经评估了解决该问题的新方法,其中首先从商业数据库中得出基于知识的代谢途径预测,然后将其输出用于制定依赖列表的LC / MS〜(n )数据采集协议。使用茚地那韦作为模型药物,在MDL代谢数据库上的亚结构相似性搜索(相似性指数为60%)产生188次“匹配”,指出可能进行两次水解,两次N-脱烷基,三个N-葡糖醛酸化,一个N -甲基化以及一些芳族和脂族氧化途径。通过使用离子阱质谱仪将该信息与依赖于数据的LC / MS〜(n)分析相结合,可在药物与人肝线粒体制剂孵育后鉴定出茚地那韦的18种代谢产物。只需一次LC / MS〜(n)运行即可完成此结果,这代表着仪器使用和操作员时间的显着节省,并提供了该药物复杂的体外代谢曲线的准确视图。

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