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发酵生产苯甘氨酸的基因工程方法。

Genetic engineering approaches for the fermentative production of phenylglycines.

机构信息

Microbiology/Biotechnology, Interfaculty Institute of Microbiology and Infection Medicine, Faculty of Science, University of Tübingen, Auf der Morgenstelle 28, D-72076, Tübingen, Germany.

Institute of Microbiology, University Stuttgart, Allmandring 31, D-70569, Stuttgart, Germany.

出版信息

Appl Microbiol Biotechnol. 2020 Apr;104(8):3433-3444. doi: 10.1007/s00253-020-10447-9. Epub 2020 Feb 20.

Abstract

L-phenylglycine (L-Phg) is a rare non-proteinogenic amino acid, which only occurs in some natural compounds, such as the streptogramin antibiotics pristinamycin I and virginiamycin S or the bicyclic peptide antibiotic dityromycin. Industrially, more interesting than L-Phg is the enantiomeric D-Phg as it plays an important role in the fine chemical industry, where it is used as a precursor for the production of semisynthetic β-lactam antibiotics. Based on the natural L-Phg operon from Streptomyces pristinaespiralis and the stereo-inverting aminotransferase gene hpgAT from Pseudomonas putida, an artificial D-Phg operon was constructed. The natural L-Phg operon, as well as the artificial D-Phg operon, was heterologously expressed in different actinomycetal host strains, which led to the successful production of Phg. By rational genetic engineering of the optimal producer strains S. pristinaespiralis and Streptomyces lividans, Phg production could be improved significantly. Here, we report on the development of a synthetic biology-derived D-Phg pathway and the optimization of fermentative Phg production in actinomycetes by genetic engineering approaches. Our data illustrate a promising alternative for the production of Phgs.

摘要

L-苯甘氨酸(L-Phg)是一种罕见的非蛋白氨基酸,仅存在于一些天然化合物中,如链阳性菌素抗生素普瑞巴林 I 和维吉尼亚霉素 S 或双环肽抗生素二曲霉素。在工业上,比 L-Phg 更有趣的是对映体 D-Phg,因为它在精细化工行业中起着重要作用,在该行业中,它被用作生产半合成β-内酰胺抗生素的前体。基于来自吸水链霉菌的天然 L-Phg 操纵子和来自恶臭假单胞菌的立体翻转氨基转移酶基因 hpgAT,构建了人工 D-Phg 操纵子。天然 L-Phg 操纵子以及人工 D-Phg 操纵子在不同放线菌宿主菌株中异源表达,导致成功生产了 Phg。通过对最佳生产菌株吸水链霉菌和变铅青链霉菌的合理遗传工程,可以显著提高 Phg 的产量。在这里,我们报告了一种基于合成生物学的 D-Phg 途径的开发,以及通过遗传工程方法优化放线菌中 Phg 发酵生产的情况。我们的数据说明了一种生产 Phgs 的有前途的替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c46/7089894/81100f3cc9b9/253_2020_10447_Fig1_HTML.jpg

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