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工程化酿酒酵母从头生物合成樱花素葡萄糖苷。

De novo biosynthesis of sakuranetin from glucose by engineered Saccharomyces cerevisiae.

机构信息

College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou, 310014, China.

Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310027, China.

出版信息

Appl Microbiol Biotechnol. 2023 Jun;107(12):3899-3909. doi: 10.1007/s00253-023-12564-7. Epub 2023 May 6.

Abstract

Sakuranetin is a plant-natural product, which has increasingly been utilized in cosmetic and pharmaceutical industries for its extensive anti-inflammatory, anti-tumor, and immunomodulatory effects. Sakuranetin was mostly produced by extraction technology from plants, which is limited to natural conditions and biomass supply. In this study, a de novo biosynthesis pathway of sakuranetin by engineered S. cerevisiae was constructed. After a series of heterogenous gene integration, a biosynthetic pathway of sakuranetin from glucose was successfully constructed in S. cerevisiae whose sakuranetin yield reached only 4.28 mg/L. Then, a multi-module metabolic engineering strategy was applied for improving sakuranetin yield in S. cerevisiae: (1) adjusting the copy number of sakuranetin synthesis genes, (2) removing the rate-limiting factor of aromatic amino acid pathway and optimizing the synthetic pathway of aromatic amino acids to enhance the supply of carbon flux for sakuranetin, and (3) introducing acetyl-CoA carboxylase mutants ACC1 and knocking out YPL062W to strengthen the supply of malonyl-CoA which is another synthetic precursor of sakuranetin. The resultant mutant S. cerevisiae exhibited a more than tenfold increase of sakuranetin titer (50.62 mg/L) in shaking flasks. Furthermore, the sakuranetin titer increased to 158.65 mg/L in a 1-L bioreactor. To our knowledge, it is the first report on the sakuranetin de novo synthesis from glucose in S. cerevisiae. KEY POINTS: • De novo biosynthesis of sakuranetin was constructed by engineered S. cerevisiae. • Sakuranetin production was enhanced by multi-module metabolic engineering strategy. • It is the first report on the sakuranetin de novo synthesis in S. cerevisiae.

摘要

樱花素是一种植物天然产物,由于其广泛的抗炎、抗肿瘤和免疫调节作用,越来越多地被应用于化妆品和制药行业。樱花素主要通过从植物中提取技术生产,这受到自然条件和生物质供应的限制。在本研究中,通过工程化酿酒酵母构建了樱花素的从头生物合成途径。经过一系列异源基因整合,成功构建了从葡萄糖合成樱花素的生物合成途径,酿酒酵母中樱花素的产量仅达到 4.28mg/L。然后,应用多模块代谢工程策略提高酿酒酵母中樱花素的产量:(1)调整樱花素合成基因的拷贝数,(2)去除芳香族氨基酸途径的限速因子并优化芳香族氨基酸的合成途径,以增强樱花素的碳通量供应,(3)引入乙酰辅酶 A 羧化酶突变体 ACC1 和敲除 YPL062W 以加强另一种樱花素合成前体丙二酰辅酶 A 的供应。所得突变酿酒酵母在摇瓶中的樱花素产量提高了十倍以上(50.62mg/L)。此外,在 1L 生物反应器中,樱花素的产量增加到 158.65mg/L。据我们所知,这是在酿酒酵母中首次从葡萄糖从头合成樱花素。关键点:• 通过工程化酿酒酵母构建了樱花素的从头生物合成途径。• 采用多模块代谢工程策略提高了樱花素的产量。• 这是在酿酒酵母中首次报道樱花素的从头合成。

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