二维超高效液相色谱-四极杆/飞行时间质谱法分析teicoplanin杂质

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL 色谱 Pub Date : 2023-02-01 DOI:10.3724/SP.J.1123.2022.03044
Wujun Shao, Yan'an Chen, Honglu Yuan, Meichun Jin, Xuefei Zhou, Yumei Qin, Heyou Yang, Yanling He
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引用次数: 0

摘要

建立了二维超高效液相色谱-四极杆/飞行时间质谱联用(2D-UPLC-Q/TOF-MS)方法,对黄芩苷中各成分进行分离和结构分析。该方法有效地解决了液相色谱-质谱(LC-MS)等色谱系统以非挥发性磷酸盐缓冲液为流动相,不适合快速鉴定杂质的问题。此外,该方法通过重新建立适合LC-MS的色谱系统,避免了使用原始方法定位和鉴定杂质的复杂性。在这项研究中,对一维(1 d)色谱法,色谱分离是一个十二烷基硅(ODS)海波西尔列上执行(250毫米×4.6毫米,5μm)使用3.0 g / L与梯度洗脱磷酸二氢钠缓冲(pH值6.0)/乙腈= 9/1 (v / v)为流动相,3.0 g / L磷酸二氢钠缓冲(pH值6.0)/乙腈= 3/7 (v / v)为流动相b柱的温度维持在30℃和紫外探测器在254 nm用于分析。在Waters ACQUITY UPLC BEH C18色谱柱(50 mm×2.1 mm, 1.7 μm)上进行脱盐,以甲酸铵缓冲液(pH 6.0)和乙腈为流动相梯度洗脱。柱温保持在45℃。采用全信息串联质谱模式(MSE),采用正离子电喷雾电离法(ESI)收集组分和杂质的质谱数据。锥形和雾化器气体流速分别为50和900 L/h。离子源温度为120℃,雾化器气体温度为500℃。ESI电压为2500 V,锥针电压为60 V。碰撞能量设定为20 ~ 50 eV。根据TA2-2组分的碎片化途径,从碎片离子中推断出teicoplanin的结构组分和杂质。采用2D-UPLC-Q/TOF-MS对欧洲药典10.0中10种成分进行了分析,并鉴定了替可普兰宁的22种杂质。检测到三种新的杂质和两种teicoplanin母核的特征碎片离子,并推导出TA2-2的碎片路径。采用该方法,1D-UPLC适用于基于相对保留时间的组分准确鉴定,2D-UPLC-Q/TOF-MS适用于基于组分片段离子的组分结构快速鉴定。结果表明,2D-UPLC-Q/TOF-MS可用于分析teicoplanin中杂质的精确质量、同位素分布和碎片离子。该方法快速、简便、灵敏,为替柯普兰的质量控制和工艺优化提供了一种新的策略。
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[Analysis of teicoplanin impurities by two-dimensional ultra performance liquid chromatography-quadrupole/time-of-flight mass spectrometry].

A two-dimensional ultra performance liquid chromatography-quadrupole/time-of-flight mass spectrometry (2D-UPLC-Q/TOF-MS) method was established for the separation and structural analysis of the components in teicoplanin. This method effectively solved the problems associated with chromatographic systems, such as liquid chromatography-mass spectrometry (LC-MS), which used a non-volatile phosphate buffer as the mobile phase and were not suitable for the rapid identification of impurities. Moreover, this method circumvented the complexities associated with locating and identifying impurities using the original method by re-establishing a chromatographic system suitable for LC-MS. In this study, for one-dimensional (1D) chromatography, the chromatographic separation was performed on an Octadecyl silica (ODS) hypersil column (250 mm×4.6 mm, 5 μm) with gradient elution using 3.0 g/L sodium dihydrogen phosphate buffer (pH 6.0)/acetonitrile=9/1 (v/v) as mobile phase A and 3.0 g/L sodium dihydrogen phosphate buffer (pH 6.0)/acetonitrile=3/7 (v/v) as mobile phase B. The column temperature was maintained at 30 ℃ and an ultraviolet detector was used at 254 nm for analysis. For 2D chromatography, desalting was performed on a Waters ACQUITY UPLC BEH C18 column (50 mm×2.1 mm, 1.7 μm) with gradient elution using ammonium formate buffer (pH 6.0) and acetonitrile as the mobile phases. The column temperature was maintained at 45 ℃. The MS data for the components and impurities were collected by positive ion electrospray ionization (ESI) using the full-information tandem MS mode (MSE). The cone and nebulizer gas flow rates were set at 50 and 900 L/h, respectively. The ion source and nebulizer gas temperatures were set at 120 ℃ and 500 ℃, respectively. The ESI and cone needle voltages were set at 2500 and 60 V, respectively. The collision energy was set at 20-50 eV. The molecular formulas of the components and impurities were determined using their exact masses and isotope distributions, and the structural components and impurities of teicoplanin were deduced from their fragment ions according to the fragmentation pathway of the TA2-2 component. Moreover, the 10 components reported in the European Pharmacopoeia 10.0 were analyzed and 22 impurities of teicoplanin were identified by 2D-UPLC-Q/TOF-MS. Three new impurities and two characteristic fragment ions of the teicoplanin parent nucleus were detected, and the fragmentation pathway of TA2-2 was deduced. Using this method, 1D-UPLC is applicable for the accurate qualification of components based on relative retention times, and 2D-UPLC-Q/TOF-MS is suitable for the rapid identification of the structure of components based on their fragment ions. The results indicate that 2D-UPLC-Q/TOF-MS may be used to analyze the structure of impurities in teicoplanin based on their exact masses, isotope distributions, and fragment ions. The method is rapid, simple, and sensitive, which provides a novel strategy for the quality control and process optimization of teicoplanin.

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来源期刊
色谱
色谱 CHEMISTRY, ANALYTICAL-
CiteScore
1.30
自引率
42.90%
发文量
7198
期刊介绍: "Chinese Journal of Chromatography" mainly reports the basic research results of chromatography, important application results of chromatography and its interdisciplinary subjects and their progress, including the application of new methods, new technologies, and new instruments in various fields, the research and development of chromatography instruments and components, instrument analysis teaching research, etc. It is suitable for researchers engaged in chromatography basic and application technology research in scientific research institutes, master and doctoral students in chromatography and related disciplines, grassroots researchers in the field of analysis and testing, and relevant personnel in chromatography instrument development and operation units. The journal has columns such as special planning, focus, perspective, research express, research paper, monograph and review, micro review, technology and application, and teaching research.
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