De novo Biosynthesis of Salvianolic Acid B in Saccharomyces cerevisiae Engineered with the Rosmarinic Acid Biosynthetic Pathway

迷迭香酸 生物合成 酿酒酵母 生物化学 丹参 代谢工程 生物 异源的 异源表达 重组DNA 基因 医学 病理 中医药 替代医学 抗氧化剂
作者
Yingpeng Xu,Lijun Geng,Yiwen Zhang,J. Andrew Jones,Meihong Zhang,Yuan Chen,Ronghui Tan,Mattheos A. G. Koffas,Zhengtao Wang,Shujuan Zhao
出处
期刊:Journal of Agricultural and Food Chemistry [American Chemical Society]
卷期号:70 (7): 2290-2302 被引量:8
标识
DOI:10.1021/acs.jafc.1c06329
摘要

Salvianolic acid B (SAB), also named lithospermic acid B, belongs to a class of water-soluble phenolic acids, originating from plants such as Salvia miltiorrhiza. SAB exhibits a variety of biological activities and has been clinically used to treat cardio- and cerebrovascular diseases and also has great potential as a health care product and medicine for other disorders. However, its biosynthetic pathway has not been completely elucidated. Here, we report the de novo biosynthesis of SAB in Saccharomyces cerevisiae engineered with the heterologous rosmarinic acid (RA) biosynthetic pathway. The created pathway contains seven genes divided into three modules on separate plasmids, pRS424-FjTAL-Sm4CL2, pRS425-SmTAT-SmHPPR or pRS425-SmTAT-CbHPPR, and pRS426-SmRAS-CbCYP-CbCPR. These three modules were cotransformed into S. cerevisiae, resulting in the recombinant strains YW-44 and YW-45. Incubation of the recombinant strains in a basic medium without supplementing any substrates yielded 34 and 30 μg/L of SAB. The findings in this study indicate that the created heterologous RA pathway cooperates with the native metabolism of S. cerevisiae to enable the de novo biosynthesis of SAB. This provides a novel insight into a biosynthesis mechanism of SAB and also lays the foundation for the production of SAB using microbial cell factories.
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