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A methodology employing retention modeling for achieving control space in liquid chromatography method development using quality by design approach

机译:采用设计方法,采用质量采用质量使用质量利用保留建模对液相色谱法实现控制空间的方法

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This study reports the application of retention modeling and quality by design practices for reverse-phase liquid chromatographic method development of a new chemical entity. Prior to the retention modeling, preliminary screening experiments were performed for the selection of stationary phase, organic modifiers, and method parameters. Based on the results of preliminary method conditions, t(G)-T (gradient time temperature) 2-D modeling with 4 input runs, and t(G)-T-t(c) (gradient time-temperature-ternary composition) 3-D modeling with 12 input runs were designed to build a model for achieving the optimized separation. Modeling of reverse phase separations was based on the measurement of both retention times and peak areas. A design space with appropriate input variables and control strategy was established prior to optimization and robustness evaluation following the quality by design framework. DryLab (R) was used to predict the optimized gradient profile and separation temperature. The robustness evaluation was carried out using the multiple factors at a time approach and the control space was established. The interdependence of control space and the control strategy was demonstrated by evaluating method robustness using two levels of system suitability criteria. The predictive accuracy of the retention modeling was established through experimental verification of the in-silico predictions. The quality by design based method development approach demonstrated the in-silico optimization as an integral component of reverse-phase chromatographic method development to evaluate the interplay of factors such as organic modifiers, separation temperature and gradient time, which greatly integrated and enhanced method robustness during method development. (C) 2020 Elsevier B.V. All rights reserved.
机译:本研究报告了保留建模和质量设计实践在反相液相色谱法开发新化学实体中的应用。在保留建模之前,对固定相、有机改性剂和方法参数的选择进行了初步筛选实验。根据初步方法条件的结果,设计了4次输入的t(G)-t(梯度-时间-温度)二维建模和12次输入的t(G)-t-t(c)(梯度-时间-温度-三元组分)三维建模,以建立实现优化分离的模型。反相分离的建模基于保留时间和峰面积的测量。在按照质量设计框架进行优化和鲁棒性评估之前,建立了具有适当输入变量和控制策略的设计空间。DryLab(R)用于预测优化的梯度分布和分离温度。采用一次多因素方法进行鲁棒性评估,并建立控制空间。通过使用两个级别的系统适用性标准评估方法鲁棒性,证明了控制空间和控制策略的相互依赖性。通过对硅内预测的实验验证,建立了保留模型的预测精度。基于设计质量的方法开发方法证明了硅优化是反相色谱方法开发的一个组成部分,用于评估有机改性剂、分离温度和梯度时间等因素的相互作用,这在方法开发过程中极大地整合和增强了方法的稳健性。(C) 2020爱思唯尔B.V.版权所有。

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