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Multifactorial design principles applied for the simultaneous separation of local anesthetics using chromatography modeling software

机译:多因素设计原理适用于使用色谱建模软件同时分离局部麻醉药的情况

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This study describes the development of liquid chromatographic methods for the simultaneous separation of some of the most popular local anesthetics in pharmaceutical preparations and medical praxis (benzocaine, bupivacaine, chloroprocaine lidocaine, oxybuprocaine, prilocaine, procaine, propipocaine and tetracaine) based on a systematic approach using experimental design methodology in which one or more factors are changed at the same time. The strategy employs a chromatography modeling software for the simultaneous optimization of critical chromatographic parameters, which are gradient time tG, temperature T and the ternary composition of the organic eluent B. Three different stationary phases were investigated, which are: Kromasil C18, Prontosil C18-AQ and Luna Phenyl-Hexyl. To build the design space for each column, 12 initial experiments were carried out by systematical variation of the selected critical parameters simultaneously. The chromatographic conditions of these initial runs are based on two different gradient times (tG = 20 and 60 min, linear gradient system from 10a€“90% organic modifier B) each at two different temperatures (T = 25 and 40 ?°C) repeated at three different ternary composition of the eluent B (a) 100% acetonitrile, (b) acetonitrilea€“methanol (50:50) (v/v), and (c) 100% methanol. In all experiments the pH value of the eluent A (20 mM phosphate buffer) was kept at 3.0. The mixture of local anesthetics could be well separated on all three stationary phases. Although not demonstrated in this paper, this method should be suitable for the analysis of LAs in pharmaceutical preparations or to detect them in some illegal cosmetics. The results showed that the selectivity and the elution order were similar on Kromasil C18 and Prontosil C18-AQ. On the other hand, a unique selectivity is resulted on Luna Phenyl-Hexyl, which shows, depending on the analytes, some additional interactions, since the separation mechanism on this column is influenced by its different steric and polar properties compared to the separation mechanism of alkyl-bonded phases. The predictions and real experiments were strongly correlated with an average absolute error (?”tR) of 0.13 min (8 s).
机译:这项研究描述了基于系统方法同时分离药物制剂和医学实践中一些最受欢迎的局部麻醉剂(苯佐卡因,布比卡因,氯普鲁卡因利多卡因,奥昔布卡因,丙胺卡因,普鲁卡因,普罗卡因和丁卡因)的液相色谱方法的发展使用实验设计方法,其中同时更改一个或多个因素。该策略使用色谱建模软件来同时优化关键色谱参数,例如梯度时间tG,温度T和有机洗脱液B的三元组成。研究了三种不同的固定相,分别是:Kromasil C18,Prontosil C18- AQ和Luna苯基己基。为了建立每列的设计空间,通过同时系统性地改变选定的关键参数,进行了12个初始实验。这些初始运行的色谱条件是基于两个不同的梯度时间(tG = 20和60 min,线性梯度系统,来自10%至90%的有机改性剂B)在两个不同的温度(T = 25和40°C)下进行的。在洗脱液B的三种不同三元组成下重复上述步骤(a)100%乙腈,(b)乙腈甲醇(50:50)(v / v),和(c)100%甲醇。在所有实验中,洗脱液A(20 mM磷酸盐缓冲液)的pH值均保持在3.0。局麻药的混合物可以在所有三个固定相上很好地分离。尽管未在本文中进行证明,但该方法应适用于分析药物制剂中的LA或检测某些非法化妆品中的LA。结果表明,在Kromasil C18和Prontosil C18-AQ上,选择性和洗脱顺序相似。另一方面,Luna Phenyl-Hexyl具有独特的选择性,根据分析物的不同,它还显示出一些其他相互作用,这是因为与该色谱柱的分离机理相比,该色谱柱的分离机理受其不同的空间和极性特性影响。烷基键合相。预测和实际实验与0.13分钟(<8 s)的平均绝对误差(?tR)密切相关。

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