University of Amsterdam, van 't Hoff Institute for Molecular Sciences, Analytical Chemistry Group, Science Park 904, 1098 XH, Amsterdam, the Netherlands; Centre of Analytical Sciences Amsterdam, Science Park 904, 1098 XH, Amsterdam, the Netherlands.
Aalen University, Department of Chemistry, Beethovenstraße 1, 73430, Aalen, Germany; Eberhard Karls University of Tübingen, Faculty of Science, 72074, Tübingen, Germany.
Anal Chim Acta. 2024 Dec 1;1331:343287. doi: 10.1016/j.aca.2024.343287. Epub 2024 Oct 9.
Monoclonal antibodies (mAbs) undergo multiple post-translational modifications (PTMs) during production and storage, resulting for instance in charge and oxidized variants. PTMs need to be assessed as critical quality attributes to assure protein quality and safety. Capillary zone electrophoresis (CZE) enables efficient charge-based separation. The CZE method developed by He et al. (2011) is currently applied routinely in the pharmaceutical industry for profiling charge heterogeneity of mAbs. However, as the method relies on a non-volatile background electrolyte (BGE), it cannot be directly hyphenated with mass spectrometry (MS), hampering the identification of separated charge variants.
This study presents a CZE-UV/MS method using a neutral static capillary coating of hydroxypropyl methylcellulose combined with a volatile BGE at pH 5.0 to allow for MS-compatible mAb charge variant separations. The effect of several parameters, including pH and concentration of the BGE, applied voltage, and injected mAb concentrations on separation performance was investigated using a panel of commercially available mAbs. The optimized method was evaluated with IgG and IgG mAbs of varying pI (7.4-9.2) and degrees of heterogeneity. Basic and acidic variants were separated from the parent mAb using a BGE of 50 mM acetic acid adjusted to pH 5.0 with ammonium hydroxide. The relative abundances of charge variants determined with the new method showed a good correlation with the corresponding relative levels obtained with the method of He et al. CZE-MS coupling was accomplished using the nanoCEasy, a low-flow sheath liquid interface, which enabled the identification and quantitation of basic, acidic, and incomplete pyroglutamate variants, and glycoforms of the tested mAbs.
This manuscript describes a new CZE-MS method that permits heterogeneity assessment of mAbs under MS-compatible conditions, providing charge variant separation.
单克隆抗体 (mAb) 在生产和储存过程中会经历多种翻译后修饰 (PTM),例如导致电荷和氧化变体。PTM 需要作为关键质量属性进行评估,以确保蛋白质的质量和安全性。毛细管区带电泳 (CZE) 能够实现有效的基于电荷的分离。He 等人开发的 CZE 方法 (2011 年) 目前在制药行业中常规用于分析 mAb 的电荷异质性。然而,由于该方法依赖于非挥发性背景电解质 (BGE),因此无法直接与质谱 (MS) 联用,从而阻碍了对分离电荷变体的鉴定。
本研究提出了一种 CZE-UV/MS 方法,该方法使用羟丙基甲基纤维素的中性静态毛细管涂层与 pH 5.0 的挥发性 BGE 结合使用,以允许与 MS 兼容的 mAb 电荷变体分离。使用一组市售的 mAb 研究了几种参数(包括 BGE 的 pH 和浓度、施加电压和注入的 mAb 浓度)对分离性能的影响。使用优化的方法评估了具有不同等电点 (pI) (7.4-9.2) 和异质性程度的 IgG 和 IgG mAb。使用 50 mM 乙酸的 BGE(用氨水调至 pH 5.0)可将基本和酸性变体与母体 mAb 分离。用新方法确定的电荷变体的相对丰度与用 He 等人的方法获得的相应相对水平具有良好的相关性。CZE-MS 联用通过 nanoCEasy 完成,这是一种低流速鞘液接口,可实现所测试 mAb 的碱性、酸性和不完全焦谷氨酸变体以及糖型的鉴定和定量。
本文描述了一种新的 CZE-MS 方法,该方法可在 MS 兼容条件下评估 mAb 的异质性,提供电荷变体分离。