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在营养缺陷型大肠杆菌中高产合成青蒿醇和莪术二烯的系统工程。

Systematic engineering for high-yield production of viridiflorol and amorphadiene in auxotrophic Escherichia coli.

机构信息

Biotransformation Innovation Platform (BioTrans), Agency for Science, Technology and Research (A*STAR), 117597, Singapore.

Biotransformation Innovation Platform (BioTrans), Agency for Science, Technology and Research (A*STAR), 117597, Singapore.

出版信息

Metab Eng. 2019 Sep;55:170-178. doi: 10.1016/j.ymben.2019.07.007. Epub 2019 Jul 19.

Abstract

Isoprenoids, widely used as pharmaceuticals, flavors and nutraceuticals, represent one of the largest groups of natural products. Yet the low availability of top-quality (enantiopure) products and high cost limit the wide application of many valuable terpenoids. An example being viridiflorol, currently used in cosmetics and personal care products, may have other unexplored applications (e.g. as insect repellents; anti-inflammatory supplements). Here, we systematically optimized an auxotrophic Escherichia coli to produce viridiflorol with transcription, translation, enzyme and strain engineering. The best strain achieved 25.7 g/L and a yield of 0.22 g-viridiflorol/g-glucose in 2.5 days. Statistical analysis revealed the correlation between viridiflorol yields with the transcriptional levels and translation initiation rates, which enabled better understanding of the isoprenoid pathway and guiding future strain optimization. As a proof-of-concept example, we applied the knowledge to amorphadiene, anti-malaria drug artemisinin precursor, achieved 30 g/L. Hence, this study paved the way for commercialization of microbial terpenoid production.

摘要

异戊二烯类化合物被广泛用作药物、香料和营养保健品,是最大的天然产物类别之一。然而,高质量(对映纯)产品的供应不足和成本高昂限制了许多有价值的萜烯类化合物的广泛应用。例如,目前用于化妆品和个人护理产品的青蒿醇可能具有其他尚未开发的应用(例如作为驱虫剂;抗炎补充剂)。在这里,我们通过转录、翻译、酶和菌株工程系统地优化了营养缺陷型大肠杆菌来生产青蒿醇。最佳菌株在 2.5 天内达到了 25.7 g/L 的产量和 0.22 g-青蒿醇/g-葡萄糖的产率。统计分析揭示了青蒿醇产率与转录水平和翻译起始速率之间的相关性,这使我们能够更好地了解异戊二烯途径,并指导未来的菌株优化。作为概念验证示例,我们将知识应用于抗疟药物青蒿素前体阿莫达非尼,达到了 30 g/L 的产量。因此,这项研究为微生物萜类化合物生产的商业化铺平了道路。

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