Use of live digital twin (shadow) soft sensor to monitor membrane degradation in continuous manufacturing single pass tangential flow filtration.

IF 2.5 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Robert Taylor, Jasdeep Mandur, Umme Amira, Natalie Al-Inati, Juan Marin-Celis, Scott Hatch, Lara Fernandez Cerezo, Nuno Pinto, Efimia Metsi-Guckel, Tiago Matos, Mark Brower, Krunal Mehta, Avik Sarkar
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Abstract

Digital twins (DT) are sophisticated mathematical models representing real-world physical processes, equipped with predictive capabilities that adapt alongside the physical system. The successful implementation of DT in bioprocessing offers numerous advantages, including enhanced understanding of processes, accelerated overall development timelines, and effective monitoring of critical process parameters (CPPs). A comprehensive end-to-end DT can facilitate informed control decisions and forecast how disturbances within the process may affect the final output, accelerating the overall development timelines while optimizing process efficiency and productivity. Tangential flow filtration (TFF) is a standard methodology in bioprocessing, commonly employed to concentrate and exchange buffers for bioproducts. The advancement of continuous process technologies has led to the emergence of alternative TFF methods, notably single-pass tangential flow filtration (SPTFF), which streamlines the process by eliminating the need for stream recirculation. Here, we present the development of a live DT of the SPTFF concentration step within the downstream continuous manufacturing line for a monoclonal antibody (mAb) process. A live DT, equipped with a state estimation tool, was implemented via the Siemens' gPROMS Digital Applications (gDAP) platform. The DT demonstrated the ability to monitor changes in membrane resistance, a typical process parameter that is not directly measured. This parameter is crucial for SPTFF control, as it allows for the constant setting of the concentration factor (CF) by adjusting the retentate flow rate based on the measured resistance and calculated transmembrane pressure (TMP). This achievement illustrates the potential of DT as effective tools for accurately tracking the complete state of the bioprocess.

利用实时数字孪生(阴影)软传感器监测连续制造单道切向流过滤过程中膜的降解。
数字孪生(DT)是代表现实世界物理过程的复杂数学模型,具有与物理系统一起适应的预测能力。在生物加工中成功实施DT提供了许多优势,包括增强对工艺的理解,加快总体开发时间表,以及对关键工艺参数(CPPs)的有效监测。全面的端到端DT可以促进明智的控制决策,并预测过程中的干扰如何影响最终输出,加快整体开发时间表,同时优化过程效率和生产力。切向流过滤(TFF)是生物加工中的一种标准方法,通常用于浓缩和交换生物制品的缓冲液。连续过程技术的进步导致了替代TFF方法的出现,特别是单道切向流过滤(SPTFF),它通过消除对流再循环的需要来简化过程。在这里,我们提出了在单克隆抗体(mAb)工艺的下游连续生产线中SPTFF浓缩步骤的活DT的开发。配备状态估计工具的实时DT通过西门子的gPROMS数字应用(gDAP)平台实现。DT显示了监测膜电阻变化的能力,这是一个不能直接测量的典型工艺参数。该参数对于SPTFF控制至关重要,因为它允许根据测量的阻力和计算的跨膜压力(TMP)通过调整保留物流量来恒定设置浓度因子(CF)。这一成就说明了DT作为准确跟踪生物过程完整状态的有效工具的潜力。
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来源期刊
Biotechnology Progress
Biotechnology Progress 工程技术-生物工程与应用微生物
CiteScore
6.50
自引率
3.40%
发文量
83
审稿时长
4 months
期刊介绍: Biotechnology Progress , an official, bimonthly publication of the American Institute of Chemical Engineers and its technological community, the Society for Biological Engineering, features peer-reviewed research articles, reviews, and descriptions of emerging techniques for the development and design of new processes, products, and devices for the biotechnology, biopharmaceutical and bioprocess industries. Widespread interest includes application of biological and engineering principles in fields such as applied cellular physiology and metabolic engineering, biocatalysis and bioreactor design, bioseparations and downstream processing, cell culture and tissue engineering, biosensors and process control, bioinformatics and systems biology, biomaterials and artificial organs, stem cell biology and genetics, and plant biology and food science. Manuscripts concerning the design of related processes, products, or devices are also encouraged. Four types of manuscripts are printed in the Journal: Research Papers, Topical or Review Papers, Letters to the Editor, and R & D Notes.
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