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共培养体系的代谢工程化生产染料木黄酮。

Systems Metabolic Engineering of Coculture for Production of Genistein.

机构信息

Frontiers Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (Ministry of Education), School of Chemical Engineering and Technology, Tianjin University, Yaguan Road 135, Jinnan District, Tianjin 300350, China.

Georgia Tech Shenzhen Institute, Tianjin University, Dashi Road 1, Nanshan District, Shenzhen 518055, China.

出版信息

ACS Synth Biol. 2022 May 20;11(5):1746-1757. doi: 10.1021/acssynbio.1c00590. Epub 2022 May 4.

DOI:10.1021/acssynbio.1c00590
PMID:35507680
Abstract

Genistein is a plant-derived isoflavone possessing various bioactivities to prevent aging, carcinogenesis, and neurodegenerative and inflammation diseases. As a typical complex flavonoid, its microbial production from sugar remains to be completed. Here, we use systems metabolic engineering stategies to design and develop a three-strain commensalistic coculture that for the first time realized the production of genistein. First, we reconstituted the naringenin module by screening and incorporating chalcone isomerase-like protein, an auxiliary component to rectify the chalcone synthase promiscuity. Furthermore, we devised and constructed the genistein module by N-terminal modifications of plant P450 enzyme 2-hydroxyisoflavanone synthase and cytochrome P450 enzyme reductase. When naringenin-producing strain was cocultivated with -coumaric acid-overproducing strain (a phenylalanine-auxotroph), two-strain coculture worked as commensalism through a unidirectional nutrient flow, which favored the efficient production of naringenin with a titer of 206.5 mg/L from glucose. A three-strain commensalistic coculture was subsequently engineered, which produced the highest titer to date of 60.8 mg/L genistein from a glucose and glycerol mixture. The commensalistic coculture is a flexible and versatile platform for the production of flavonoids, indicating a promising future for production of complex natural products in engineered .

摘要

染料木黄酮是一种植物来源的异黄酮,具有多种生物活性,可预防衰老、致癌、神经退行性和炎症性疾病。作为一种典型的复杂类黄酮,其从糖发酵生产仍有待完成。在这里,我们使用系统代谢工程策略来设计和开发一种三菌株共生共培养体系,首次实现了染料木黄酮的生产。首先,我们通过筛选和整合查尔酮异构酶样蛋白,一种校正查尔酮合酶混杂性的辅助成分,重新构建了柚皮素模块。此外,我们通过植物 P450 酶 2-羟基异黄酮合酶和细胞色素 P450 酶还原酶的 N 端修饰设计并构建了染料木黄酮模块。当含有柚皮素的生产菌株与 -香豆酸过量生产菌株(苯丙氨酸营养缺陷型)共培养时,两菌株通过单向营养流共生,有利于柚皮素的高效生产,葡萄糖转化率达到 206.5 mg/L。随后,构建了三菌株共生共培养体系,从葡萄糖和甘油混合物中生产出迄今为止最高的 60.8 mg/L 染料木黄酮。共生共培养是一种灵活多样的黄酮类化合物生产平台,为工程菌中复杂天然产物的生产展示了广阔的前景。

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