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Mechanistic modeling, simulation, and optimization of mixed‐mode chromatography for an antibody polishing step

机译:用于抗体精纯步骤的混合模式色谱的机理建模、模拟和优化

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Abstract Mixed‐mode chromatography combines features of ion‐exchange chromatography and hydrophobic interaction chromatography and is increasingly used in antibody purification. As a replacement for flow‐through operations on traditional unmixed resins or as a pH‐controlled bind‐and‐elute step, the use of both interaction modes promises a better removal of product‐specific impurities. However, the combination of the functionalities makes industrial process development significantly more complex, in particular the identification of the often small elution window that delivers the desired selectivity. Mechanistic modeling has proven that even difficult separation problems can be solved in a computer‐optimized manner once the process dynamics have been modeled. The adsorption models described in the literature are also very complex, which makes model calibration difficult. In this work, we approach this problem with a newly constructed model that describes the adsorber saturation with the help of the surface coverage function of the colloidal particle adsorption model for ion‐exchange chromatography. In a case study, a model for a pH‐controlled antibody polishing step was created from six experiments. The behavior of fragments, aggregates, and host cell proteins was described with the help of offline analysis. After in silico optimization, a validation experiment confirmed an improved process performance in comparison to the historical process set point. In addition to these good results, the work also shows that the high dynamics of mixed‐mode chromatography can produce unexpected results if process parameters deviate too far from tried and tested conditions.
机译:摘要 混合模式色谱法结合了离子交换色谱法和疏水作用层析法的特点,在抗体纯化中应用越来越广泛。作为传统未混合树脂的流通操作的替代品,或作为pH控制的结合和洗脱步骤,使用这两种相互作用模式可以更好地去除产品特定的杂质。然而,这些功能的结合使工业工艺开发变得更加复杂,特别是识别通常很小的洗脱窗口,以提供所需的选择性。机理建模已经证明,一旦对过程动力学进行了建模,即使是困难的分离问题也可以以计算机优化的方式解决。文献中描述的吸附模型也非常复杂,这使得模型标定变得困难。在这项工作中,我们通过一个新构建的模型来解决这个问题,该模型借助于离子交换色谱胶体颗粒吸附模型的表面覆盖函数来描述吸附剂饱和度。在案例研究中,通过六个实验创建了pH控制抗体精纯步骤的模型。在离线分析的帮助下描述了片段、聚集体和宿主细胞蛋白的行为。在计算机优化之后,验证实验证实,与历史过程设定点相比,过程性能有所提高。除了这些良好的结果外,这项工作还表明,如果工艺参数与久经考验的条件相差太远,混合模式色谱的高动态性会产生意想不到的结果。

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