渗滤
超滤(肾)
下游加工
过程开发
下游(制造业)
化学
错流过滤
计算机科学
2019年冠状病毒病(COVID-19)
生物制药
计算生物学
色谱法
工艺工程
纳米技术
材料科学
膜
医学
微滤
生物化学
生物
生物技术
工程类
传染病(医学专业)
疾病
病理
运营管理
作者
Stefanie Wachter,Thibaut Angevin,Niket Bubna,Adelene Tan,Adam Cichy,David Brown,Leslie S. Wolfe,Ryan Sappington,E. Lilla,Luke Berry,Dane A. Grismer,Christian Orth,Milan Blanusa,Sigma S. Mostafa,Hitto Kaufmann,Karin Felderer
标识
DOI:10.1016/j.jbiotec.2023.10.003
摘要
Bispecific biotherapeutics offer potent and highly specific treatment options in oncology and immuno-oncology. However, many bispecific formats are prone to high levels of aggregation and instability, leading to prolonged development timelines, inefficient manufacturing, and high costs. The novel class of Mabcalin™ molecules consist of Anticalin® proteins fused to an IgG and are currently being evaluated in pre-clinical and clinical studies. Here, we describe a robust high-yield manufacturing platform for these therapeutic fusion proteins providing data up to commercially relevant scales. A platform upstream process was established for one of the Mabcalin bispecifics and then applied to other clinically relevant drug candidates with different IgG target specificities. Process performance was compared in 3 L bioreactors and production was scaled-up to up to 1000 L for confirmation. The Mabcalin proteins' structural and biophysical similarities enabled a downstream platform approach consisting of initial protein A capture, viral inactivation, mixed-mode anion exchange polishing, second polishing by cation exchange or hydrophobic interaction chromatography, viral filtration, buffer exchange and concentration by ultrafiltration/diafiltration. All three processes met their target specifications and achieved comparable clearance of impurities and product yields across scales. The described platform approach provides a fast and economic path to process confirmation and is well comparable to classical monoclonal antibody approaches in terms of costs and time to clinic.
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