Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zurich, Switzerland.
Ypso-facto 10 viaduc Kennedy, 54000 Nancy, France.
Biotechnol J. 2017 Dec;12(12). doi: 10.1002/biot.201700123. Epub 2017 Nov 13.
In this work, the adsorption behavior of the different charge isoforms of the same monoclonal antibody (mAb) on strong cation-exchange resins is analyzed. While charge isoforms of the same antibody mainly differ in their effective charge, the similar structure and size allows developing a simplified model, which describes the adsorption behavior of mAb charge isoforms independently of the number of isoforms with only four parameters. In contrast to classical model-based descriptions of the adsorption isotherm, the proposed work enables retrieving some physical meaning in the definition of the model parameters. These model parameters are determined for several resin-antibody combinations. Thereby it is found that for mAbs on commercial cation exchangers an effective resin charge density of 0.22 ± 0.08 mmol mL of solid phase is used for protein binding, which was found to be independent of the absolute resin charge density measured by titration. The presented results help to understand the adsorption behavior of mAbs on cation-exchangers, which is applicable both for the isolation of the main charge isoform or for preserving a certain charge isoform pattern during the polishing processes.
在这项工作中,分析了同一单克隆抗体 (mAb) 的不同电荷异构体在强阳离子交换树脂上的吸附行为。虽然同种抗体的电荷异构体主要在有效电荷上有所不同,但相似的结构和大小允许开发一个简化模型,该模型仅用四个参数描述 mAb 电荷异构体的吸附行为,而与异构体的数量无关。与基于经典模型的吸附等温线描述相比,所提出的工作使得在模型参数的定义中可以获得一些物理意义。确定了几个树脂-抗体组合的模型参数。结果发现,对于商业阳离子交换剂上的 mAbs,用于蛋白质结合的有效树脂电荷密度为 0.22±0.08mmol mL 固相,这与通过滴定测量的绝对树脂电荷密度无关。所呈现的结果有助于理解 mAbs 在阳离子交换剂上的吸附行为,这既适用于主要电荷异构体的分离,也适用于在抛光过程中保留特定的电荷异构体模式。