包涵体衍生的具有多个二硫键的非标记阳离子重组蛋白的折叠前纯化程序,用于高效的再折叠。

IF 2.5 3区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Shuichiro Kimura, Wataru Yamamoto, Ai Miyamoto, Koreyoshi Imamura, Junichiro Futami
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引用次数: 0

摘要

生产含二硫化物的重组蛋白通常需要在纯化前重新折叠包涵体。预折叠纯化步骤对于有效的再折叠是至关重要的,因为包裹体中的杂质会干扰再折叠和随后的纯化。本研究提出了一种新的预折叠程序,使用可逆s阳离子化技术进行蛋白质的增溶和反相高效液相色谱纯化。这种折叠前纯化步骤通过有效地去除细菌包涵体污染物中的折叠抑制剂和减少蛋白水解降解产物来提高再折叠收率。由于该过程不需要肽标签进行亲和纯化,因此随后进行简化的下游工艺是一种优越的技术,其中需要去除亲和标签。本研究报告了改进的重折叠和纯化程序,以获得高阳离子(pI = 9.25)的小鼠血管内皮细胞生长因子(188个氨基酸形式),作为我们研究的模型蛋白;该蛋白呈同二聚体构象,具有多个二硫化物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pre-folding purification procedures for inclusion body-derived non-tagged cationic recombinant proteins with multiple disulfide bonds for efficient refolding.

The production of disulfide-containing recombinant proteins often requires refolding of inclusion bodies before purification. A pre-refolding purification step is crucial for effective refolding because impurities in the inclusion bodies interfere with refolding and subsequent purification. This study presents a new pre-refolding procedure using a reversible S-cationization technique for protein solubilization and purification by reversed-phase high performance liquid chromatography. This pre-folding purification step improves refolding yield by effectively removing the refolding inhibitors from contaminates from bacterial inclusion bodies, and reducing proteolytically degraded products. Because this procedure does not require a peptide tag for affinity purification, it is a superior technique to subsequently perform a simplified downstream process wherein the affinity tag needs to be removed. This study reports improved refolding and purification procedure to obtain the highly cationic (pI = 9.25) mouse vascular endothelial cell growth factor (188 amino acids form) that is used as a model protein in our study; this protein shows a homodimeric conformation and possesses multiple disulfides.

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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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