Sun Yuwei, Chen Zhuo, Wang Guangyi, Lv Huajun, Mao Yaping, Ma Ke, Wang Yong
CAS-Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, 200032, China.
CAS-Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, 200032, China; University of Chinese Academy of Sciences, Beijing, 100039, China.
Metab Eng. 2022 Sep;73:201-213. doi: 10.1016/j.ymben.2022.08.001. Epub 2022 Aug 5.
The oxidized kaurene (Ox-Kau) compounds are the core structures of many important diterpenoids with biological activities and economical values. However, easy access to diverse Ox-Kau products is still limited by low natural abundance, and large-scale manufacture remain challenging due to lack of proper heterologous production. To achieve an abundant source alternative to natural extracts, we here report a highly effective Escherichia coli-based platform for the de novo production of multiple Ox-Kau molecules from simple carbon source. Pathway optimization in prokaryotic cells through modification of transmembrane CYP450 oxidases, cytochrome b co-expression and AlphaFold-based protein engineering improved a 50-fold yield of steviol (1.07 g L), a key intermediate in the kaurenoid biosynthesis. Combinatorial biosynthetic strategy further led to a series of oxidized derivatives (20-600 mg L) with rich oxygenated functional groups on C3, C7, C16 and C19 previously hard to be introduced. Our engineered strains not only laid a foundation for realizing the industrial fermentation of gram-scale ent-kaurene diterpenoids, but also provided a reliable platform for characterization and utilization of kaurene-modifying oxidases, which may generate naturally rare or unnatural ent-kaurenoids with potential bioactivity.
氧化贝壳杉烯(Ox-Kau)化合物是许多具有生物活性和经济价值的重要二萜类化合物的核心结构。然而,由于天然丰度低,获得多种Ox-Kau产品的途径仍然有限,并且由于缺乏合适的异源生产方法,大规模制造仍然具有挑战性。为了实现天然提取物的丰富替代来源,我们在此报告了一种基于大肠杆菌的高效平台,用于从简单碳源从头生产多种Ox-Kau分子。通过修饰跨膜CYP450氧化酶、细胞色素b共表达和基于AlphaFold的蛋白质工程在原核细胞中进行途径优化,提高了贝壳杉烯生物合成关键中间体甜菊醇(1.07 g/L)的产量50倍。组合生物合成策略进一步产生了一系列氧化衍生物(20-600 mg/L),其在C3、C7、C16和C19上具有丰富的含氧官能团,这些官能团以前很难引入。我们构建的菌株不仅为实现克级对映-贝壳杉烯二萜类化合物的工业发酵奠定了基础,还为贝壳杉烯修饰氧化酶的表征和利用提供了一个可靠的平台,该平台可能产生具有潜在生物活性的天然稀有或非天然对映-贝壳杉烯类化合物。