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开发一种用于生产人源化Fab'片段的高产大肠杆菌周质表达系统。

Development of a high yielding E. coli periplasmic expression system for the production of humanized Fab' fragments.

作者信息

Ellis Mark, Patel Pareshkumar, Edon Marjory, Ramage Walter, Dickinson Robert, Humphreys David P

机构信息

Discovery Research, Protein Sciences, UCB Pharma, 208 Bath Road, Slough, Berkshire, SL1 3WE, U.K.

Lonza Biologics plc, 228 Bath Road GB-Slough, Berkshire, SL1 4DX, U.K.

出版信息

Biotechnol Prog. 2017 Jan;33(1):212-220. doi: 10.1002/btpr.2393. Epub 2016 Nov 17.

DOI:10.1002/btpr.2393
PMID:27790865
Abstract

Humanized Fab' fragments may be produced in the periplasm of Escherichia coli but can be subject to degradation by host cell proteases. In order to increase Fab' yield and reduce proteolysis we developed periplasmic protease deficient strains of E. coli. These strains lacked the protease activity of Tsp, protease III and DegP. High cell density fermentations indicated Tsp deficient strains increased productivity two fold but this increase was accompanied by premature cell lysis soon after the induction of Fab' expression. To overcome the reduction in cell viability we introduced suppressor mutations into the spr gene. The mutations partially restored the wild type phenotype of the cells. Furthermore, we coexpressed a range of periplasmic chaperone proteins with the Fab', DsbC had the most significant impact, increasing humanized Fab' production during high cell density fermentation. When DsbC coexpression was combined with a Tsp deficient spr strain we observed an increase in yield and essentially restored "wild type" cell viability. We achieved a final periplasmic yield of over 2.4g/L (final cell density OD 105), 40 h post Fab' induction with minimal cell lysis.The data suggests that proteolysis, periplasm integrity, protein folding and disulphide bond formation are all potential limiting steps in the production of Fab' fragments in the periplasm of E. coli. In this body of work, we have addressed these limiting steps by utilizing stabilized protease deficient strains and chaperone coexpression. © 2016 American Institute of Chemical Engineers Biotechnol. Prog., 33:212-220, 2017.

摘要

人源化Fab'片段可在大肠杆菌的周质中产生,但可能会被宿主细胞蛋白酶降解。为了提高Fab'的产量并减少蛋白水解,我们构建了周质蛋白酶缺陷型大肠杆菌菌株。这些菌株缺乏Tsp、蛋白酶III和DegP的蛋白酶活性。高细胞密度发酵表明,Tsp缺陷型菌株的生产力提高了两倍,但这种提高伴随着Fab'表达诱导后不久细胞的过早裂解。为了克服细胞活力的降低,我们在spr基因中引入了抑制突变。这些突变部分恢复了细胞的野生型表型。此外,我们将一系列周质伴侣蛋白与Fab'共表达,DsbC的影响最为显著,在高细胞密度发酵过程中增加了人源化Fab'的产量。当DsbC共表达与Tsp缺陷型spr菌株结合时,我们观察到产量增加,并且基本恢复了“野生型”细胞活力。在Fab'诱导40小时后,我们实现了最终周质产量超过2.4g/L(最终细胞密度OD 105),且细胞裂解最少。数据表明,蛋白水解、周质完整性、蛋白质折叠和二硫键形成都是大肠杆菌周质中Fab'片段生产的潜在限制步骤。在这项工作中,我们通过利用稳定的蛋白酶缺陷型菌株和伴侣蛋白共表达解决了这些限制步骤。© 2016美国化学工程师学会生物技术进展,33:212 - 220,2017。

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