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首页> 外文期刊>Journal of Chromatography, Biomedical Applications >Determination of Ionazolac and its hydroxy and O-sulfated metabolites by on-line sample preparation liquid chromatography with fluorescence detection
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Determination of Ionazolac and its hydroxy and O-sulfated metabolites by on-line sample preparation liquid chromatography with fluorescence detection

机译:在线样品前处理-荧光检测-液相色谱法测定离子唑及其羟基和O-硫酸盐代谢物

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A reliable method, which can be used for the determination of lonazolac and its hydroxylated and O-sulfated metabolites in cell culture media with methyllonazolac as the internal standard is described. The procedure employs on-line sample enrichment using a BioTrap 500 MS~(TM) (20 * 4 mm I.D.) extraction pre-column and subsequent gradient separation on an Xterra MS c_(18)-H~(TM) (100 * 3 mm I.D., 3.5 μm particles) analytical column in the back-flush mode. Signal monitoring was done by measurement of fluorescence responses at 273 nm for excitation and 385 nm for emission. Structural identity of analyte peaks was confirmed by liquid chromatography coupled to mass spectroscopy (LC-MS-MS) using an electrospray ionization (ESI) source in the selected reaction monitoring (SRM) mode. Mean recoveries of lonazolac, hydroxylonazolac and lonazolac sulfate, respectively, from the biological matrix were 104.2 ± 3.5, 96.7 ± 2.2, and 100.9 ± 3.5%. The limit of detection (LOD) for the three compounds was about 5 ng/ml using a total sample volume of only 50 μl. Linearity of signal responses versus concentration for all three analytes was accomplished in the range 10-600 ng/ml. The mean values of the coefficients of variation (C.V.) for quality control samples measured in duplicate at three different days at the 10, 40, 100, and 400 ng/ml level were 4.46 ± 1.15, 3.94 ± 2.13 and 4.79 ± 2.07% for lonazolac, hydroxylonazolac and lonazolac sulfate. The target analytes were sufficiently stable at both storage and sample preparation conditions because no substantial deviations between analyte concentrations measured before and after subsequently performed freeze and thaw cycles were observed.
机译:描述了一种可靠的方法,该方法可用于测定以甲基lonazolac为内标的细胞培养基中的lonazolac及其羟基化和O-硫酸化代谢物。该程序采用BioTrap 500 MS〜(20 * 4 mm ID)萃取柱进行在线样品富集,然后在Xterra MS c_(18)-H〜(100 * 3)上进行梯度分离。内径为3.5毫米的颗粒(内径为3.5毫米)的分析柱。通过测量在273 nm激发和385 nm发射的荧光响应来进行信号监控。在选定的反应监测(SRM)模式下,使用电喷雾电离(ESI)源,通过液相色谱-质谱联用(LC-MS-MS)确认了分析物峰的结构同一性。从生物基质中回收的托拉唑酸,羟苯甲酸酯和硫酸拉唑酸的平均回收率分别为104.2±3.5%,96.7±2.2和100.9±3.5%。使用仅50μl的总样品量,这三种化合物的检出限(LOD)约为5 ng / ml。所有三种分析物的信号响应与浓度的线性关系在10-600 ng / ml范围内实现。在10、40、100和400 ng / ml的水平下,在三个不同的天重复测量的质量控制样品的变异系数(CV)的平均值分别为4.46±1.15、3.94±2.13和4.79±2.07% lonazolac,hydroxyonazoazo和lonazolac硫酸盐。目标分析物在存储和样品制备条件下都足够稳定,因为在随后进行的冷冻和解冻循环之前和之后均未观察到测量到的分析物浓度之间存在实质性差异。

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