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Synthesizing Ginsenoside Rh2 in Cell Factory at High-efficiency

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Journal Cell Discov
Date 2019 Jan 18
PMID 30652026
Citations 45
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Abstract

Synthetic biology approach has been frequently applied to produce plant rare bioactive compounds in microbial cell factories by fermentation. However, to reach an ideal manufactural efficiency, it is necessary to optimize the microbial cell factories systemically by boosting sufficient carbon flux to the precursor synthesis and tuning the expression level and efficiency of key bioparts related to the synthetic pathway. We previously developed a yeast cell factory to produce ginsenoside Rh2 from glucose. However, the ginsenoside Rh2 yield was too low for commercialization due to the low supply of the ginsenoside aglycone protopanaxadiol (PPD) and poor performance of the key UDP-glycosyltransferase (UGT) (biopart UGTPg45) in the final step of the biosynthetic pathway. In the present study, we constructed a PPD-producing chassis via modular engineering of the mevalonic acid pathway and optimization of P450 expression levels. The new yeast chassis could produce 529.0 mg/L of PPD in shake flasks and 11.02 g/L in 10 L fed-batch fermentation. Based on this high PPD-producing chassis, we established a series of cell factories to produce ginsenoside Rh2, which we optimized by improving the C3-OH glycosylation efficiency. We increased the copy number of UGTPg45, and engineered its promoter to increase expression levels. In addition, we screened for more efficient and compatible UGT bioparts from other plant species and mutants originating from the direct evolution of UGTPg45. Combining all engineered strategies, we built a yeast cell factory with the greatest ginsenoside Rh2 production reported to date, 179.3 mg/L in shake flasks and 2.25 g/L in 10 L fed-batch fermentation. The results set up a successful example for improving yeast cell factories to produce plant rare natural products, especially the glycosylated ones.

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References
1.
Vogt T, Jones P . Glycosyltransferases in plant natural product synthesis: characterization of a supergene family. Trends Plant Sci. 2000; 5(9):380-6. DOI: 10.1016/s1360-1385(00)01720-9. View

2.
Shibata S . Chemistry and cancer preventing activities of ginseng saponins and some related triterpenoid compounds. J Korean Med Sci. 2001; 16 Suppl:S28-37. PMC: 3202208. DOI: 10.3346/jkms.2001.16.S.S28. View

3.
Fu X, Albermann C, Jiang J, Liao J, Zhang C, Thorson J . Antibiotic optimization via in vitro glycorandomization. Nat Biotechnol. 2003; 21(12):1467-9. DOI: 10.1038/nbt909. View

4.
Bae E, Joo Han M, Kim E, Kim D . Transformation of ginseng saponins to ginsenoside Rh2 by acids and human intestinal bacteria and biological activities of their transformants. Arch Pharm Res. 2004; 27(1):61-7. DOI: 10.1007/BF02980048. View

5.
Kim H, Lee E, Ko S, Choi K, Park J, Im D . Effects of ginsenosides Rg3 and Rh2 on the proliferation of prostate cancer cells. Arch Pharm Res. 2004; 27(4):429-35. DOI: 10.1007/BF02980085. View