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First comprehensive view on a magnetic separation based protein purification processes: From process development to cleaning validation of a GMP‐ready magnetic separator

机译:基于磁力分离的蛋白质纯化工艺的全面概述:从工艺开发到支持GMP的磁力分离器的清洁验证

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摘要

Magnetic separation processes are known as integrated bioanalytical protein purification method since decades and are well described. However, use of magnetic separation processes in a regulated industrial production environment has been prevented by the lack of suitable process equipment and prejudice against the productivity of the process and its qualification for cleaning‐in‐place operation. With the aim of overcoming this prejudice, a comprehensive process development approach is presented, based on a GMP‐compliant magnetic separator, including an optimization of the batch adsorption process, implementation into a technical‐scale, and the development and validation of cleaning routines for the device. By the implementation of a two‐step counter‐current binding process, it was possible to raise the yields of the magnetic separation process even for very low concentrated targets in a vast surplus of competing proteins, like the hormone equine chorionic gonadotropin in serum, from 74% to over 95%. For the validation of the cleaning process, a direct surface swabbing method combined with a total organic carbon analysis was established for the determination of two model contaminants. The cleanability of the process equipment was proven for both model contaminants by reliably meeting the 10 ppm criteria.
机译:几十年来,磁分离过程被称为综合生物分析蛋白质纯化方法,并且已经得到了很好的描述。但是,由于缺乏合适的过程设备以及对过程生产率及其就地清洗操作资格的偏见,已阻止在规范的工业生产环境中使用磁选过程。为了克服这种偏见,基于符合GMP的磁选机,提出了一种综合的工艺开发方法,包括分批吸附工艺的优化,技术规模的实施以及清洁程序的开发和验证。设备。通过实施两步逆流结合过程,即使对于非常大量的竞争性蛋白质(例如血清中的激素马绒毛膜促性腺激素)中非常低浓度的靶标,也可以提高磁分离过程的收率。 74%到95%以上。为了验证清洁过程,建立了直接表面擦拭方法与总有机碳分析相结合的方法,用于确定两种模型污染物。通过可靠地满足10 ppm的标准,证明了两种模型污染物的工艺设备的清洁性。

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