Decoding and reprogramming of the biosynthetic networks of mushroom-derived bioactive type II ganoderic acids in yeast.

IF 13 1区 生物学 Q1 CELL BIOLOGY
Qin Wang, Ye Li, Shunhan Zhang, Wei Yuan, Zeqian Du, Ting Shi, Zhao Chang, Xingye Zhai, Yinhua Lu, Meng Wang, Juan Guo, Jian-Jiang Zhong, Han Xiao
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引用次数: 0

Abstract

Mushroom's specialized secondary metabolites possess important pharmacological activities, but their biosynthetic pathway elucidation is extremely challenging, not to mention reprogramming of their biosynthetic networks to target metabolites. By taking Ganoderma lucidum, a famous traditional medicinal mushroom, as a lead example, here we decoded the biosynthetic networks of type II ganoderic acids (TIIGAs), a group of its main bioactive metabolites by studying the coordinated gene expression in G. lucidum, identifying endogenous or heterologous enzymes capable of C22 hydroxylation, configuration conversion of C3 hydroxyl group, and acetylation on C3, C15 and C22 hydroxyl groups. Notably, we revealed the catalytic mechanism of the C22 hydroxylase CYP512W6, and an unexpected bifunctional acetyltransferase GlAT that is required to transfer acetyl groups to C15 and C22. Using a fluorescence-guided integration method, we achieved efficient biosynthesis of significant TIIGAs applicable to industrial fermentation. After introducing all the identified enzymes to baker's yeast, we observed that biosynthesis of downstream TIIGAs was severely impeded, and dredged the metabolic block by temporally regulating the expression of acetyltransferases. By reprogramming of the biosynthetic networks of TIIGAs, we were able to produce over 30 TIIGAs, exhibiting 1-4 orders of magnitude higher titers or efficiencies than those from farmed mushrooms. The work enables the access to valuable TIIGAs, facilitates their widespread application, and sheds light on research of other mushroom products.

酵母中蘑菇衍生的生物活性型灵芝酸生物合成网络的解码和重编程。
蘑菇的特殊次生代谢物具有重要的药理活性,但其生物合成途径的阐明极具挑战性,更不用说对其生物合成网络进行重编程以靶向代谢物。本文以著名传统药用蘑菇灵芝为例,通过研究灵芝中基因的协同表达,对其主要生物活性代谢产物ⅱ型灵芝酸(TIIGAs)的生物合成网络进行了解码,确定了能够进行C22羟基化、C3羟基构型转化以及C3、C15和C22羟基乙酰化的内源或外源酶。值得注意的是,我们揭示了C22羟化酶CYP512W6的催化机制,以及将乙酰基转移到C15和C22所需的双功能乙酰转移酶GlAT。利用荧光引导整合方法,我们实现了适用于工业发酵的重要tiiga的高效生物合成。将所有鉴定的酶引入面包酵母后,我们观察到下游TIIGAs的生物合成受到严重阻碍,并通过暂时调节乙酰转移酶的表达来缓解代谢障碍。通过对tiiga的生物合成网络进行重编程,我们能够生产出30多种tiiga,其滴度或效率比养殖蘑菇高1-4个数量级。这项工作使获得有价值的tiiga,促进了它们的广泛应用,并为其他蘑菇产品的研究提供了启示。
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来源期刊
Cell Discovery
Cell Discovery Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
24.20
自引率
0.60%
发文量
120
审稿时长
20 weeks
期刊介绍: Cell Discovery is a cutting-edge, open access journal published by Springer Nature in collaboration with the Center for Excellence in Molecular Cell Science, Chinese Academy of Sciences (CAS). Our aim is to provide a dynamic and accessible platform for scientists to showcase their exceptional original research. Cell Discovery covers a wide range of topics within the fields of molecular and cell biology. We eagerly publish results of great significance and that are of broad interest to the scientific community. With an international authorship and a focus on basic life sciences, our journal is a valued member of Springer Nature's prestigious Molecular Cell Biology journals. In summary, Cell Discovery offers a fresh approach to scholarly publishing, enabling scientists from around the world to share their exceptional findings in molecular and cell biology.
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