Suppr超能文献

集成化工艺开发:提高大肠杆菌中 Fab 生产的关键。

Integrated process development: The key to improve Fab production in E. coli.

机构信息

Christian Doppler Laboratory for production of next-level biopharmaceuticals in E. coli, Department of Biotechnology, University of Natural Resources and Life Sciences, Vienna, Austria.

Boehringer Ingelheim RCV GmbH & Co KG, Vienna, Austria.

出版信息

Biotechnol J. 2021 Jun;16(6):e2000562. doi: 10.1002/biot.202000562. Epub 2021 Mar 1.

Abstract

Bioprocess development and optimization is a challenging, costly, and time-consuming effort. In this multidisciplinary task, upstream processing (USP) and downstream processing (DSP) are conventionally considered distinct disciplines. This consideration fosters "one-way" optimization disregarding interdependencies between unit operations; thus, the full potential of the process chain cannot be achieved. Therefore, it is necessary to fully integrate USP and DSP process development to provide balanced biotechnological production processes. The aim of the present study was to investigate how different host/secretory signal/antigen binding fragment (Fab) combinations in E. coli expression systems influence USP, primary recovery performance and the final product quality. We ran identical fed-batch cultivations with 16 different expression clones to study growth and product formation kinetics, as well as centrifugation efficiency, viscosity, extracellular DNA, and endotoxin content, important parameters in DSP. We observed a severe influence on cell growth, product titer, extracellular product, and cell lysis, accompanied by a significant impact on the analyzed parameters of DSP performance. Our results provide the basis for future research on integrated process development considering interdependencies between USP and DSP; however, individual products need to be considered specifically. These interdependencies need to be understood for rational decision-making and efficient process development in research and industry.

摘要

生物工艺的开发和优化是一项具有挑战性、高成本和耗时的工作。在这个多学科任务中,上游处理(USP)和下游处理(DSP)通常被视为截然不同的学科。这种考虑助长了“单向”优化,忽略了单元操作之间的相互依存关系;因此,无法充分发挥工艺链的潜力。因此,有必要充分整合 USP 和 DSP 工艺开发,以提供平衡的生物技术生产工艺。本研究旨在探讨大肠杆菌表达系统中不同的宿主/分泌信号/抗原结合片段(Fab)组合如何影响 USP、初级回收性能和最终产品质量。我们使用 16 种不同的表达克隆进行了相同的分批补料培养,以研究生长和产物形成动力学,以及离心效率、粘度、细胞外 DNA 和内毒素含量,这些都是 DSP 中的重要参数。我们观察到细胞生长、产物滴度、细胞外产物和细胞裂解受到严重影响,同时对 DSP 性能的分析参数也有显著影响。我们的研究结果为未来考虑 USP 和 DSP 之间相互依存关系的集成工艺开发提供了基础,但需要具体考虑个别产品。需要了解这些相互依存关系,以便在研究和工业中进行合理决策和高效的工艺开发。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验