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多尺度模型方法在离子交换层析中治疗性抗体的应用。

A multiscale modeling method for therapeutic antibodies in ion exchange chromatography.

机构信息

Institute of Process Engineering in Life Sciences, Section IV: Biomolecular Separation Engineering, Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany.

Early Stage Bioprocess Development, Boehringer Ingelheim Pharma GmbH & Co. KG, Biberach an der Riss, Germany.

出版信息

Biotechnol Bioeng. 2023 Jan;120(1):125-138. doi: 10.1002/bit.28258. Epub 2022 Oct 24.

Abstract

The development of biopharmaceutical downstream processes relies on exhaustive experimental studies. The root cause is the poorly understood relationship between the protein structure of monoclonal antibodies (mAbs) and their macroscopic process behavior. Especially the development of preparative chromatography processes is challenged by the increasing structural complexity of novel antibody formats and accelerated development timelines. This study introduces a multiscale in silico model consisting of homology modeling, quantitative structure-property relationships (QSPR), and mechanistic chromatography modeling leading from the amino acid sequence of a mAb to the digital representation of its cation exchange chromatography (CEX) process. The model leverages the mAbs' structural characteristics and experimental data of a diverse set of 21 therapeutic antibodies to predict elution profiles of two mAbs that were removed from the training data set. QSPR modeling identified mAb-specific protein descriptors relevant for the prediction of the thermodynamic equilibrium and the stoichiometric coefficient of the adsorption reaction. The consideration of two discrete conformational states of IgG4 mAbs enabled prediction of split-peak elution profiles. Starting from the sequence, the presented multiscale model allows in silico development of chromatography processes before protein material is available for experimental studies.

摘要

生物制药下游工艺的开发依赖于详尽的实验研究。其根本原因是单克隆抗体 (mAb) 的蛋白质结构与其宏观工艺行为之间的关系尚未被充分理解。特别是新型抗体结构的日益复杂以及开发时间的加速,给制备型色谱工艺的开发带来了挑战。本研究介绍了一种多尺度的计算模型,该模型由同源建模、定量结构-性质关系 (QSPR) 和机械色谱建模组成,从 mAb 的氨基酸序列到其阳离子交换色谱 (CEX) 过程的数字表示。该模型利用 mAb 的结构特征和 21 种不同治疗性抗体的实验数据,预测了两个从训练数据集删除的 mAb 的洗脱曲线。QSPR 模型确定了 mAb 特异性的蛋白质描述符,这些描述符与吸附反应的热力学平衡和化学计量系数的预测有关。考虑到 IgG4 mAb 的两个离散构象状态,能够预测分裂峰洗脱曲线。从序列开始,本文提出的多尺度模型允许在可用于实验研究的蛋白质材料之前,对色谱工艺进行计算机模拟开发。

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