AAV载体制备膜净化平台的技术经济分析。

IF 3.6 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Juan J. Romero, Eleanor W. Jenkins, Jacob I. Monroe, S. Ranil Wickramasinghe, Xianghong Qian, Dibakar Bhattacharyya, Scott M. Husson
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引用次数: 0

摘要

大规模生产用于基因治疗的病毒载体的技术,如切向流过滤和膜层析,正在开发中。在这些工艺开发的早期阶段,技术经济分析对于确定对工艺性能产生最大影响的膜特性是有用的。在这项研究中,我们采用了用于腺相关病毒载体纯化的单克隆抗体捕获的技术-经济框架。我们增加了机械模型来模拟在收获和在抛光过程中分离满衣壳和空衣壳的通量下降。添加了图形用户界面来帮助用户探索设计搜索空间。我们选择了一个基本工艺,并操纵了选定的变量来观察它们对大规模制造性能的影响。这些敏感性分析表明,在选定的工艺条件下,增加模块容量比增加切向流膜过滤模块的操作通量更有效地降低商品成本。相对低动态结合容量(DBC)和短停留时间(RT)的膜色谱柱的经济性能与高DBC和长RT的膜色谱柱相似或更好。此外,满衣壳和空衣壳的平衡固相浓度随盐浓度的差异显著影响纯度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Techno-Economic Analysis of Membrane-Based Purification Platforms for AAV Vector Production

Techno-Economic Analysis of Membrane-Based Purification Platforms for AAV Vector Production

Techno-Economic Analysis of Membrane-Based Purification Platforms for AAV Vector Production

Techno-Economic Analysis of Membrane-Based Purification Platforms for AAV Vector Production

Techno-Economic Analysis of Membrane-Based Purification Platforms for AAV Vector Production

Technologies for large-scale manufacturing of viral vectors for gene therapies, such as tangential flow filtration and membrane chromatography, are under development. In these early stages of process development, techno-economic analyses are useful for identifying membrane properties yielding the greatest impact on process performance. In this study, we adapted a techno-economic framework used for monoclonal antibody capture for adeno-associated viral vector purification. We added mechanistic models to simulate flux decline during harvesting and separating full and empty capsids during polishing. Graphical user interfaces were added to help users explore the design search space. We selected a base process and manipulated selected variables to see their impact on large-scale manufacturing performance. These sensitivity analyses revealed that, under the selected process conditions, increasing module capacity reduces cost of goods more effectively than increasing operational flux in tangential flow membrane filtration modules for virus harvesting. Membrane chromatography columns with relatively low dynamic binding capacity (DBC) and short residence time (RT) offered similar or better economic performance than those with high DBC and long RT. Additionally, the difference in equilibrium solid-phase concentration between full and empty capsids as a function of salt concentration significantly affects purity.

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来源期刊
Biotechnology and Bioengineering
Biotechnology and Bioengineering 工程技术-生物工程与应用微生物
CiteScore
7.90
自引率
5.30%
发文量
280
审稿时长
2.1 months
期刊介绍: Biotechnology & Bioengineering publishes Perspectives, Articles, Reviews, Mini-Reviews, and Communications to the Editor that embrace all aspects of biotechnology. These include: -Enzyme systems and their applications, including enzyme reactors, purification, and applied aspects of protein engineering -Animal-cell biotechnology, including media development -Applied aspects of cellular physiology, metabolism, and energetics -Biocatalysis and applied enzymology, including enzyme reactors, protein engineering, and nanobiotechnology -Biothermodynamics -Biofuels, including biomass and renewable resource engineering -Biomaterials, including delivery systems and materials for tissue engineering -Bioprocess engineering, including kinetics and modeling of biological systems, transport phenomena in bioreactors, bioreactor design, monitoring, and control -Biosensors and instrumentation -Computational and systems biology, including bioinformatics and genomic/proteomic studies -Environmental biotechnology, including biofilms, algal systems, and bioremediation -Metabolic and cellular engineering -Plant-cell biotechnology -Spectroscopic and other analytical techniques for biotechnological applications -Synthetic biology -Tissue engineering, stem-cell bioengineering, regenerative medicine, gene therapy and delivery systems The editors will consider papers for publication based on novelty, their immediate or future impact on biotechnological processes, and their contribution to the advancement of biochemical engineering science. Submission of papers dealing with routine aspects of bioprocessing, description of established equipment, and routine applications of established methodologies (e.g., control strategies, modeling, experimental methods) is discouraged. Theoretical papers will be judged based on the novelty of the approach and their potential impact, or on their novel capability to predict and elucidate experimental observations.
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