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亲水作用色谱法快速方法开发在药物分析中的应用:定量结构-保留关系与实验设计的结合。

Rapid Method Development in Hydrophilic Interaction Liquid Chromatography for Pharmaceutical Analysis Using a Combination of Quantitative Structure-Retention Relationships and Design of Experiments.

机构信息

Australian Centre for Research on Separation Science (ACROSS), School of Physical Sciences-Chemistry, University of Tasmania , Private Bag 75, Hobart 7001, Australia.

Pfizer Global Research and Development, Sandwich, United Kingdom.

出版信息

Anal Chem. 2017 Feb 7;89(3):1870-1878. doi: 10.1021/acs.analchem.6b04282. Epub 2017 Jan 12.

Abstract

A design-of-experiment (DoE) model was developed, able to describe the retention times of a mixture of pharmaceutical compounds in hydrophilic interaction liquid chromatography (HILIC) under all possible combinations of acetonitrile content, salt concentration, and mobile-phase pH with R > 0.95. Further, a quantitative structure-retention relationship (QSRR) model was developed to predict retention times for new analytes, based only on their chemical structures, with a root-mean-square error of prediction (RMSEP) as low as 0.81%. A compound classification based on the concept of similarity was applied prior to QSRR modeling. Finally, we utilized a combined QSRR-DoE approach to propose an optimal design space in a quality-by-design (QbD) workflow to facilitate the HILIC method development. The mathematical QSRR-DoE model was shown to be highly predictive when applied to an independent test set of unseen compounds in unseen conditions with a RMSEP value of 5.83%. The QSRR-DoE computed retention time of pharmaceutical test analytes and subsequently calculated separation selectivity was used to optimize the chromatographic conditions for efficient separation of targets. A Monte Carlo simulation was performed to evaluate the risk of uncertainty in the model's prediction, and to define the design space where the desired quality criterion was met. Experimental realization of peak selectivity between targets under the selected optimal working conditions confirmed the theoretical predictions. These results demonstrate how discovery of optimal conditions for the separation of new analytes can be accelerated by the use of appropriate theoretical tools.

摘要

建立了一个设计实验(DoE)模型,能够描述在亲水相互作用液相色谱(HILIC)中,在乙腈含量、盐浓度和流动相 pH 值的所有可能组合下,药物化合物混合物的保留时间,相关系数 R 大于 0.95。此外,还建立了一个定量结构保留关系(QSRR)模型,仅基于其化学结构,就可以预测新分析物的保留时间,预测误差的均方根(RMSEP)低至 0.81%。在进行 QSRR 建模之前,应用了一种基于相似性概念的化合物分类方法。最后,我们利用 QSRR-DoE 联合方法,在质量源于设计(QbD)工作流程中提出了一个优化设计空间,以促进 HILIC 方法的开发。当应用于独立的未知条件下的未知化合物测试集时,该数学 QSRR-DoE 模型表现出高度的预测性,RMSEP 值为 5.83%。QSRR-DoE 计算的药物测试分析物的保留时间,以及随后计算的分离选择性,用于优化色谱条件,以实现目标的有效分离。进行了蒙特卡罗模拟,以评估模型预测的不确定性风险,并定义满足所需质量标准的设计空间。在所选最佳工作条件下,对目标之间的峰选择性进行实验实现,证实了理论预测。这些结果表明,通过使用适当的理论工具,可以加速发现新分析物分离的最佳条件。

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