Cordyceps, Scarlet Club · 2022 · Journal Article
Medium relevanceCordyceps sinensis-mediated biotransformation of notoginsenoside R1 into 25-OH-20(S/R)-R2 with elevated cardioprotective effect against DOX-induced cell injury.
Cordyceps militaris
Key points
- Notoginsenoside R1 is a dammarane saponin in Panax notoginseng with promising cardioprotective effects
- The bioactivity-structure relationship of such saponins suggested that the presence of a hydroxyl group at C25 could elevate its performance
- To fulfill that goal, bioconversion of notoginsenoside R1 was mediated by a biocatalytic system of Cordyceps sinensis that had successfully produced multiple 25-OH derivatives from ginsenoside Re and Rg1
- The major metabolic products of notoginsenoside R1 were identified as 25-OH-20( S / R )-R2 via the techniques of HRMS, 13 C-NMR, 1 H-NMR, HSQC and HMBC. Time-course experiments were designed to monitor the reaction process, establishing a biocatalytic pathway of "R1→20( S / R )-R2→25-OH-20( S / R )-R2"
- Afterwards, the effect of these biocatalytic products against doxorubicin-induced cardiotoxicity was evaluated, indicating a significant increase in efficacy after the hydration of the C24-C25 double bond on the dammarane skeleton
- In conclusion, the biocatalytic system employed in this paper is able to harvest 25-OH-20( S / R )-R2 in high yield from notoginsenoside R1, which will provide lead compounds or drug candidates to alleviate myocardial injury caused by doxorubicin
Metadata-grounded summary
Citation abstract
Notoginsenoside R1 is a dammarane saponin in Panax notoginseng with promising cardioprotective effects. The bioactivity-structure relationship of such saponins suggested that the presence of a hydroxyl group at C25 could elevate its performance. To fulfill that goal, bioconversion of notoginsenoside R1 was mediated by a biocatalytic system of Cordyceps sinensis that had successfully produced multiple 25-OH derivatives from ginsenoside Re and Rg1. The major metabolic products of notoginsenoside R1 were identified as 25-OH-20( S / R )-R2 via the techniques of HRMS, 13 C-NMR, 1 H-NMR, HSQC and HMBC. Time-course experiments were designed to monitor the reaction process, establishing a biocatalytic pathway of "R1→20( S / R )-R2→25-OH-20( S / R )-R2". The bioconversion rate of these 25-OH derivatives added up to 69.87% which greatly precedes the previous report. Afterwards, the effect of these biocatalytic products against doxorubicin-induced cardiotoxicity was evaluated, indicating a significant increase in efficacy after the hydration of the C24-C25 double bond on the dammarane skeleton. In conclusion, the biocatalytic system employed in this paper is able to harvest 25-OH-20( S / R )-R2 in high yield from notoginsenoside R1, which will provide lead compounds or drug candidates to alleviate myocardial injury caused by doxorubicin.
Citation
Liu J, Xin Y, Qiu Z, Zhang Q, He T, Qiu Y, et al. (2022). Cordyceps sinensis-mediated biotransformation of notoginsenoside R1 into 25-OH-20(S/R)-R2 with elevated cardioprotective effect against DOX-induced cell injury. RSC advances https://doi.org/10.1039/d2ra01470j PMID: 35497008
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