首页> 外文期刊>Analytical and Bioanalytical Chemistry >LC–MS–MS determination of ibuprofen, 2-hydroxyibuprofen enantiomers, and carboxyibuprofen stereoisomers for application in biotransformation studies employing endophytic fungi
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LC–MS–MS determination of ibuprofen, 2-hydroxyibuprofen enantiomers, and carboxyibuprofen stereoisomers for application in biotransformation studies employing endophytic fungi

机译:LC-MS-MS测定布洛芬,2-羟基布洛芬对映异构体和羧基布洛芬立体异构体,用于采用内生真菌的生物转化研究

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The purpose of this study was the development and validation of an LC–MS–MS method for simultaneous analysis of ibuprofen (IBP), 2-hydroxyibuprofen (2-OH-IBP) enantiomers, and carboxyibuprofen (COOH-IBP) stereoisomers in fungi culture medium, to investigate the ability of some endophytic fungi to biotransform the chiral drug IBP into its metabolites. Resolution of IBP and the stereoisomers of its main metabolites was achieved by use of a Chiralpak AS-H column (150 × 4.6 mm, 5 μm particle size), column temperature 8 °C, and the mobile phase hexane–isopropanol–trifluoroacetic acid (95: 5: 0.1, v/v) at a flow rate of 1.2 mL min−1. Post-column infusion with 10 mmol L−1 ammonium acetate in methanol at a flow rate of 0.3 mL min−1 was performed to enhance MS detection (positive electrospray ionization). Liquid–liquid extraction was used for sample preparation with hexane–ethyl acetate (1:1, v/v) as extraction solvent. Linearity was obtained in the range 0.1–20 μg mL−1 for IBP, 0.05–7.5 μg mL−1 for each 2-OH-IBP enantiomer, and 0.025–5.0 μg mL−1 for each COOH-IBP stereoisomer (r ≥ 0.99). The coefficients of variation and relative errors obtained in precision and accuracy studies (within-day and between-day) were below 15%. The stability studies showed that the samples were stable (p > 0.05) during freeze and thaw cycles, short-term exposure to room temperature, storage at −20 °C, and biotransformation conditions. Among the six fungi studied, only the strains Nigrospora sphaerica (SS67) and Chaetomium globosum (VR10) biotransformed IBP enantioselectively, with greater formation of the metabolite (+)-(S)-2-OH-IBP. Formation of the COOH-IBP stereoisomers, which involves hydroxylation at C3 and further oxidation to form the carboxyl group, was not observed.
机译:这项研究的目的是开发和验证一种LC-MS-MS方法,用于同时分析真菌培养物中的布洛芬(IBP),2-羟基布洛芬(2-OH-IBP)对映异构体和羧基布洛芬(COOH-IBP)立体异构体培养基,以研究某些内生真菌将手性药物IBP转化为代谢物的能力。通过使用Chiralpak AS-H色谱柱(150×4.6 mm,粒径5μm),色谱柱温度8°C和流动相己烷-异丙醇-三氟乙酸(IBR)及其主要代谢物的立体异构体的分离95:5:0.1,v / v)的流速为1.2 mL min -1 。柱后在甲醇中以0.3 mL min -1 的流速注入10 mmol L -1 乙酸铵,以增强MS检测(正电喷雾电离)。液-液萃取用于以己烷-乙酸乙酯(1:1,v / v)为萃取溶剂的样品前处理。对于IBP,线性范围为0.1–20μgmL -1 ;对于每种2-OH-IBP对映体,线性范围为0.05–7.5μgmL -1 ; 0.025–5.0每个COOH-IBP立体异构体的微克mL -1 (r≥0.99)。在精密度和准确性研究中(日内和日间)获得的变异系数和相对误差低于15%。稳定性研究表明,样品在冷冻和融化循环,短期暴露于室温,在-20°C下储存以及生物转化条件下稳定(p> 0.05)。在所研究的六种真菌中,只有球形黑夜霉(SS67)和球壳拟南杆菌(VR10)对映体选择性地生物转化了IBP,且代谢物(+)-(S)-2-OH-IBP的形成更大。没有观察到COOH-IBP立体异构体的形成,该立体异构体涉及在C 3处的羟基化并进一步氧化以形成羧基。

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