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四参数优化及故障排除在反相高效液相色谱-荷电气溶胶检测法中用于测定磷脂制剂中 S-溶血磷脂酰胆碱的稳定性指示方法。

A four parameter optimization and troubleshooting of a RPLC - charged aerosol detection stability indicating method for determination of S-lysophosphatidylcholines in a phospholipid formulation.

机构信息

Novartis Pharmaceuticals Corporation, San Carlos, CA 94070, United States.

Novartis Pharmaceuticals Corporation, San Carlos, CA 94070, United States.

出版信息

J Pharm Biomed Anal. 2018 Jun 5;155:288-297. doi: 10.1016/j.jpba.2018.03.067. Epub 2018 Apr 7.

Abstract

A four parameter optimization of a stability indicating method for non-chromophoric degradation products of 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1-stearoyl-sn-glycero-3-phosphocholine and 2-stearoyl-sn-glycero-3-phosphocholine was achieved using a reverse phase liquid chromatography-charged aerosol detection (RPLC-CAD) technique. Using the hydrophobic subtraction model of selectivity, a core-shell, polar embedded RPLC column was selected followed by gradient-temperature optimization, resulting in ideal relative peak placements for a robust, stability indicating separation. The CAD instrument parameters, power function value (PFV) and evaporator temperature were optimized for lysophosphatidylcholines to give UV absorbance detector-like linearity performance within a defined concentration range. The two lysophosphatidylcholines gave the same response factor in the selected conditions. System specific power function values needed to be set for the two RPLC-CAD instruments used. A custom flow-divert profile, sending only a portion of the column effluent to the detector, was necessary to mitigate detector response drifting effects. The importance of the PFV optimization for each instrument of identical build and how to overcome recovery issues brought on by the matrix effects from the lipid-RP stationary phase interaction is reported.

摘要

采用反相液相色谱-荷电气溶胶检测(RPLC-CAD)技术,对 1,2-二硬脂酰-sn-甘油-3-磷酸胆碱(DSPC)、1-硬脂酰-sn-甘油-3-磷酸胆碱和 2-硬脂酰-sn-甘油-3-磷酸胆碱的非发色降解产物的稳定指示方法进行了四参数优化。利用选择性的疏水扣除模型,选择了核壳型、极性嵌入的 RPLC 柱,然后进行梯度-温度优化,得到了理想的相对峰位置,实现了稳健的、具有稳定性指示的分离。为了使磷脂酰胆碱获得类似于紫外吸收检测器的线性性能,对 CAD 仪器参数(功率函数值(PFV)和蒸发器温度进行了优化,在规定的浓度范围内。在选定的条件下,两种溶血磷脂酰胆碱具有相同的响应因子。需要为使用的两台 RPLC-CAD 仪器设置特定的系统功率函数值。需要定制分流曲线,仅将部分柱洗脱液发送到检测器,以减轻检测器响应漂移的影响。报告了每个仪器的 PFV 优化的重要性,以及如何克服由脂质-RP 固定相相互作用的基质效应引起的回收率问题。

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