首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >New MS network analysis pattern for the rapid identification of constituents from traditional Chinese medicine prescription Lishukang capsules in vitro and in vivo based on UHPLC/Q-TOF-MS
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New MS network analysis pattern for the rapid identification of constituents from traditional Chinese medicine prescription Lishukang capsules in vitro and in vivo based on UHPLC/Q-TOF-MS

机译:新的MS网络分析模式,用于快速鉴定中医处方丽舒胶囊的成分体外和体内基于UHPLC / Q-TOF-MS的体内

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摘要

Ultra-high-performance liquid chromatography combined with quadrupole time-of-flight mass spectrometry (UHPLC-Q-TOF-MS) has recently been widely used in qualitative analyses of traditional Chinese medicine (TCM) prescriptions. However, a poor understanding of detected mass spectral data has rendered data processing difficult and time-consuming. Efficient and widespread data analysis methods focused on identifying both phytochemical compounds and metabolites of TCM prescriptions have rarely been described. In this study, a new MS network analysis pattern that uses model drug Lishukang (LSK) capsules to accelerate the data processing of TCM preparations is developed. The MS network analysis pattern integrates intrinsic structural correlations of phytochemical compounds and structural information derived from mass spectrometry to identify the same types of compounds from a raw data stream. As a result, five MS networks of flavones and flavone glycosides, alkaloids, phenolic acids, saponins and benzylester glucosides in LSK are preliminarily established. 278 compounds, including 9 potential novel compounds are identified or tentatively assigned based on MS networks. Furthermore, 57 potential metabolites of LSK are identified in rat plasma, and potential metabolic pathways are investigated under the guidance of MS networks in vitro. The MS network analysis pattern serves as an integral solution for identifying phytochemical compounds and metabolites of TCM prescriptions. The investigations of LSK also provide essential data for its further study.
机译:超高效液相色谱相结合了四极飞行时间质谱(UHPLC-Q-TOF-MS),最近被广泛用于中药(TCM)处方的定性分析。然而,对检测到的质谱数据的理解差具有难以耗时的数据处理。很少描述专注于鉴定植物化学化合物和中医处方的代谢物的高效和广泛的数据分析方法。在本研究中,开发了一种新的MS网络分析模式,用于使用模型药物丽舒(LSK)胶囊加速TCM制剂的数据处理。 MS网络分析模式整合植物化合物和源自质谱法的结构信息的内在结构相关性,以鉴定来自原始数据流的相同类型的化合物。结果,预先建立了LSK中的五毫秒黄酮和黄酮糖苷,生物碱,酚醛酸,皂苷和苄酯葡糖苷。基于MS网络鉴定或暂时分配278个化合物,包括9种潜在的新化合物。此外,在大鼠等离子体中鉴定了57个LSK潜在代谢物,并且在体外的MS网络的指导下研究了潜在的代谢途径。 MS网络分析模式用作鉴定TCM处方的植物化学化合物和代谢物的积分解决方案。 LSK的调查还提供了进一步研究的基本数据。

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