High‐throughput in silico workflow for optimization and characterization of multimodal chromatographic processes

工作流程 计算机科学 吞吐量 洗脱 色谱法 工艺工程 化学 工程类 数据库 电信 无线
作者
Scott H. Altern,Jessica Y. Lyall,John P. Welsh,Sean Burgess,Vijesh Kumar,Chris Williams,Abraham M. Lenhoff,Steven M. Cramer
出处
期刊:Biotechnology Progress [American Chemical Society]
卷期号:40 (6): e3483-e3483 被引量:15
标识
DOI:10.1002/btpr.3483
摘要

While high-throughput (HT) experimentation and mechanistic modeling have long been employed in chromatographic process development, it remains unclear how these techniques should be used in concert within development workflows. In this work, a process development workflow based on HT experiments and mechanistic modeling was constructed. The integration of HT and modeling approaches offers improved workflow efficiency and speed. This high-throughput in silico (HT-IS) workflow was employed to develop a Capto MMC polishing step for mAb aggregate removal. High-throughput batch isotherm data was first generated over a range of mobile phase conditions and a suite of analytics were employed. Parameters for the extended steric mass action (SMA) isotherm were regressed for the multicomponent system. Model validation was performed using the extended SMA isotherm in concert with the general rate model of chromatography using the CADET modeling software. Here, step elution profiles were predicted for eight RoboColumn runs across a range of ionic strength, pH, and load density. Optimized processes were generated through minimization of a complex objective function based on key process metrics. Processes were evaluated at lab-scale using two feedstocks, differing in composition. The results confirmed that both processes obtained high monomer yield (>85%) and removed 50 % of aggregate species. Column simulations were then carried out to determine sensitivity to a wide range of process inputs. Elution buffer pH was found to be the most critical process parameter, followed by resin ionic capacity. Overall, this study demonstrated the utility of the HT-IS workflow for rapid process development and characterization.
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