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单克隆抗体产品电荷变体的离子交换过程色谱的机理建模

Mechanistic modeling of ion-exchange process chromatography of charge variants of monoclonal antibody products.

作者信息

Kumar Vijesh, Leweke Samuel, von Lieres Eric, Rathore Anurag S

机构信息

Department of Chemical Engineering, Indian Institute of Technology, Hauz Khas, New Delhi, India.

Forschungszentrum Jülich, 52425 Jülich, Germany.

出版信息

J Chromatogr A. 2015 Dec 24;1426:140-53. doi: 10.1016/j.chroma.2015.11.062. Epub 2015 Nov 21.

Abstract

Ion-exchange chromatography (IEX) is universally accepted as the optimal method for achieving process scale separation of charge variants of a monoclonal antibody (mAb) therapeutic. These variants are closely related to the product and a baseline separation is rarely achieved. The general practice is to fractionate the eluate from the IEX column, analyze the fractions and then pool the desired fractions to obtain the targeted composition of variants. This is, however, a very cumbersome and time consuming exercise. A mechanistic model that is capable of simulating the peak profile will be a much more elegant and effective way to make a decision on the pooling strategy. This paper proposes a mechanistic model, based on the general rate model, to predict elution peak profile for separation of the main product from its variants. The proposed approach uses inverse fit of process scale chromatogram for estimation of model parameters using the initial values that are obtained from theoretical correlations. The packed bed column has been modeled along with the chromatographic system consisting of the mixer, tubing and detectors as a series of dispersed plug flow and continuous stirred tank reactors. The model uses loading ranges starting at 25% to a maximum of 70% of the loading capacity and hence is applicable to process scale separations. Langmuir model has been extended to include the effects of salt concentration and temperature on the model parameters. The extended Langmuir model that has been proposed uses one less parameter than the SMA model and this results in a significant ease of estimating the model parameters from inverse fitting. The proposed model has been validated with experimental data and has been shown to successfully predict peak profile for a range of load capacities (15-28mg/mL), gradient lengths (10-30CV), bed heights (6-20cm), and for three different resins with good accuracy (as measured by estimation of residuals). The model has been also validated for a two component mixture consisting of the main mAb product and one of its basic charge variants. The proposed model can be used for optimization and control of preparative scale chromatography for separation of charge variants.

摘要

离子交换色谱法(IEX)被公认为是实现单克隆抗体(mAb)治疗性药物电荷变体工艺规模分离的最佳方法。这些变体与产品密切相关,很少能实现基线分离。一般做法是对IEX柱的洗脱液进行分馏,分析各馏分,然后合并所需馏分以获得目标变体组成。然而,这是一项非常繁琐且耗时的工作。一个能够模拟峰形的机理模型将是一种更优雅、更有效的方法来决定合并策略。本文提出了一种基于通用速率模型的机理模型,用于预测从其变体中分离主要产品的洗脱峰形。所提出的方法利用工艺规模色谱图的反向拟合,使用从理论相关性获得的初始值来估计模型参数。填充床柱已与由混合器、管道和检测器组成的色谱系统一起建模,该色谱系统被视为一系列分散的活塞流和连续搅拌釜反应器。该模型使用的负载范围从负载容量的25%开始,最大为70%,因此适用于工艺规模分离。朗缪尔模型已扩展到包括盐浓度和温度对模型参数的影响。所提出的扩展朗缪尔模型比SMA模型少用一个参数,这使得从反向拟合中估计模型参数变得更加容易。所提出的模型已通过实验数据进行了验证,并已被证明能够成功预测一系列负载容量(15 - 28mg/mL)、梯度长度(10 - 30CV)、床高(6 - 20cm)以及三种不同树脂的峰形,且具有良好的准确性(通过残差估计来衡量)。该模型也已针对由主要mAb产品及其一种碱性电荷变体组成的两组分混合物进行了验证。所提出的模型可用于优化和控制制备规模色谱法以分离电荷变体。

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