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基于表面展示酶的细胞色素P450驱动羟基化的简化工艺设计。

A simplified process design for P450 driven hydroxylation based on surface displayed enzymes.

作者信息

Ströhle Frank W, Kranen Eva, Schrader Jens, Maas Ruth, Holtmann Dirk

机构信息

DECHEMA-Forschungsinstitut, Biochemical Engineering, Frankfurt am Main, Hessen, 60486, Germany.

Autodisplay Biotech GmbH, Düsseldorf, Germany.

出版信息

Biotechnol Bioeng. 2016 Jun;113(6):1225-33. doi: 10.1002/bit.25885. Epub 2015 Dec 2.

DOI:10.1002/bit.25885
PMID:26574191
Abstract

New production routes for fine and bulk chemicals are important to establish further sustainable processes in industry. Besides the identification of new biocatalysts and new production routes the optimization of existing processes in regard to an improved utilization of the catalysts are needed. In this paper we describe the successful expression of P450BM3 on the surface of E. coli cells with the Autodisplay system. The successful hydroxylation of palmitic acid by using surface-displayed P450BM3 was shown. Besides optimization of surface protein expression, several cofactor regeneration systems were compared and evaluated. Afterwards, the development of a suitable process for the biocatalytic hydroxylation of fatty acids based on the re-use of the catalysts after a simple centrifugation was investigated. It was shown that the catalyst can be used for several times without any loss in activity. By using surface-displayed P450s in combination with an enzymatic cofactor regeneration system a total turnover number of up to 54,700 could be reached, to the knowledge of the authors the highest value reported for a P450 monooxygenase to date. Further optimizations of the described reaction system can have an enormous impact on the process design for more sustainable bioprocesses. Biotechnol. Bioeng. 2016;113: 1225-1233. © 2015 Wiley Periodicals, Inc.

摘要

精细化学品和大宗化学品的新生产路线对于在工业中建立进一步的可持续工艺非常重要。除了鉴定新的生物催化剂和新的生产路线外,还需要针对提高催化剂利用率对现有工艺进行优化。在本文中,我们描述了利用自动展示系统在大肠杆菌细胞表面成功表达细胞色素P450BM3。结果表明,利用表面展示的细胞色素P450BM3成功实现了棕榈酸的羟基化。除了优化表面蛋白表达外,还比较和评估了几种辅因子再生系统。之后,研究了基于简单离心后催化剂再利用的脂肪酸生物催化羟基化合适工艺的开发。结果表明,该催化剂可重复使用多次而活性无任何损失。据作者所知,通过将表面展示的细胞色素P450与酶促辅因子再生系统结合使用,总周转数可达54700,这是迄今为止报道的细胞色素P450单加氧酶的最高值。对所述反应系统的进一步优化可能会对更可持续生物工艺的工艺设计产生巨大影响。《生物技术与生物工程》2016年;113: 1225 - 1233。© 2015威利期刊公司

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