Yu Peng, Xue-Man Lin, Yu-Han An, Hua Sun, Yan Li, Xiao-Yan Sun, Ting Gong, Jing-Jing Chen, Tian-Jiao Chen, Jin-Ling Yang, Ping Zhu
The pharmacological activity of protopanaxadiol (PPD) can be enhanced by oxidative modification. Compared with chemical synthesis and biotransformation, synthetic biology offers a more efficient and eco-friendly approach for modifying PPD. In this study, we identified two oxidases from Mucor spinosus. MsSDR3 oxidizes C3-OH of both dammarenediol-II and PPD to a ketone, while MsCYP3 oxidizes C12-OH of PPD to a ketone and hydroxylates PPD at C7β, C15α, and C11β positions. Combining MsSDR3/MsCYP3 with the enzymes involved in ginsenoside biosynthesis, we achieved de novo biosynthesis of seven ginsenoside aglycone analogues in Saccharomyces cerevisiae. Pharmacological evaluation indicated that 12-oxo-15α-hydroxy-protopanaxadiol (p3) showed higher anticolon cancer activity, and 7β-hydroxy-protopanaxadiol (p6) exhibited not only higher anticolon, antigastric, antiliver, antilung, and antipancreatic cancer activities but also higher cardioprotective activity than PPD. Our work establishes a green and sustainable platform for producing active ginsenoside aglycone analogues, paving the way for the development of drugs and functional foods.