在大肠杆菌中生产 N-糖基化醇脱氢酶

IF 1.4 4区 生物学 Q3 BIOLOGY Biologia Pub Date : 2024-05-31 DOI:10.1007/s11756-024-01707-4
Zdenko Levarski, Stanislava Bírová, Kristina Hriňová, Johana Dlapová, Eva Struhárňanská, Lenka Levarská, Ján Turňa, Stanislav Stuchlík
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引用次数: 0

摘要

使用细菌糖基化系统对重组蛋白进行 N-糖基化已被证明是一种有价值的工具,尽管它还在不断发展,但最终可应用于各行各业。当用于酶工程时,它提供了增加稳定性或固定化途径的可能性,从而提高了生物转化或其他生物催化程序等的有效性。在氧化还原生物转化反应中使用的醇脱氢酶(ADH)就是这样一种很有前途的酶。鉴于目前重组酶生产的可能性,包括在细菌生物糖工程和糖蛋白生产方面取得的重大进展,这项工作的目的是在大肠杆菌中以糖基化形式生产来自鲁伯氏红球菌(Rhodococcus ruber)的耐热 ADH(RrADH)。我们成功开发了一种双质粒表达系统,利用糖基化标签方法对目标蛋白进行糖基化。我们能够生产可溶形式的 RrADH,同时检测到与 RrADH 结合的细菌聚糖以及酶的活性。与重组酶结合的聚糖可用于酶的定向共价固定,这将增加其在各种化合物生物转化中的实际应用潜力。
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Production of N-glycosylated alcohol dehydrogenase in Escherichia coli

N-glycosylation of recombinant proteins using bacterial glycosylation system has proven to be a valuable although developing tool ultimately applicable to various industries. When used for enzyme engineering, it offers the possibility of increased stability or immobilization route and thus increasing effectiveness of e.g. biotransformation or other biocatalysis procedures. One such promising enzyme is alcohol dehydrogenase (ADH) for use in redox biotransformation reactions. Given the current possibilities of recombinant enzyme production, including major advances in glycoengineering and glycoprotein production in bacterial organisms, the aim of this work was the production of thermotolerant ADH from Rhodococcus ruber (RrADH) in glycosylated form in Escherichia coli. We have successfully developed a dual plasmid expression system enabling glycosylation of target proteins utilizing a glyco-tag approach. We were able to produce RrADH in soluble form and at the same time we detected a bacterial glycan conjugated to RrADH as well as the activity of the enzyme. The glycan bound to recombinant enzyme can be used for oriented covalent immobilization of the enzyme, which would increase the potential for its practical application in biotransformation of various compounds.

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来源期刊
Biologia
Biologia 生物-生物学
CiteScore
3.30
自引率
6.70%
发文量
290
审稿时长
6 months
期刊介绍: Established in 1946, Biologia publishes high-quality research papers in the fields of microbial, plant and animal sciences. Microbial sciences papers span all aspects of Bacteria, Archaea and microbial Eucarya including biochemistry, cellular and molecular biology, genomics, proteomics and bioinformatics. Plant sciences topics include fundamental research in taxonomy, geobotany, genetics and all fields of experimental botany including cellular, whole-plant and community physiology. Zoology coverage includes animal systematics and taxonomy, morphology, ecology and physiology from cellular to molecular level.
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