Process Research and Development, Genentech, Inc., One DNA Way, South San Francisco, CA 94080, USA.
Biotechnol Prog. 2010 May-Jun;26(3):750-5. doi: 10.1002/btpr.385.
The quality-by-design (QbD) regulatory initiative promotes the development of process design spaces describing the multidimensional effects and interactions of process variables on critical quality attributes of therapeutic products. However, because of the complex nature of production processes, strategies must be devised to provide for design space development with reasonable allocation of resources while maintaining highly dependable results. Here, we discuss strategies for the determination of design spaces for viral clearance by anion exchange chromatography (AEX) during purification of monoclonal antibodies. We developed a risk assessment for AEX using a formalized method and applying previous knowledge of the effects of certain variables and the mechanism of action for virus removal by this process. We then use design-of-experiments (DOE) concepts to perform a highly fractionated factorial experiment and show that varying many process parameters simultaneously over wide ranges does not affect the ability of the AEX process to remove endogenous retrovirus-like particles from CHO-cell derived feedstocks. Finally, we performed a full factorial design and observed that a high degree of viral clearance was obtained for three different model viruses when the most significant process parameters were varied over ranges relevant to typical manufacturing processes. These experiments indicate the robust nature of viral clearance by the AEX process as well as the design space where removal of viral impurities and contaminants can be assured. In addition, the concepts and methodology presented here provides a general approach for the development of design spaces to assure that quality of biotherapeutic products is maintained.
质量源于设计(QbD)法规倡议旨在开发描述治疗产品关键质量属性的多维工艺变量的多变量效应和相互作用的工艺设计空间。然而,由于生产工艺的复杂性,必须制定策略,在合理分配资源的同时,为设计空间的开发提供保障,以确保结果高度可靠。在这里,我们讨论了在单克隆抗体纯化过程中通过阴离子交换层析(AEX)清除病毒的设计空间确定策略。我们使用正式方法对 AEX 进行了风险评估,并应用了先前对某些变量的影响和该过程去除病毒的作用机制的知识。然后,我们使用实验设计(DoE)概念进行高度分馏析因实验,并表明在宽范围内同时改变许多工艺参数不会影响 AEX 工艺从 CHO 细胞来源的原料中去除内源性逆转录病毒样颗粒的能力。最后,我们进行了全因子设计,并观察到当最显著的工艺参数在与典型制造工艺相关的范围内变化时,三种不同的模型病毒的清除率很高。这些实验表明 AEX 工艺具有很强的清除病毒的能力,并且在设计空间中可以保证清除病毒杂质和污染物。此外,这里提出的概念和方法为开发设计空间提供了一种通用方法,以确保生物治疗产品的质量得到维持。