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Metabolomics Revealed Novel Isoflavones and Optimal Cultivation Time of Cordyceps militaris Fermentation

机译:代谢组学揭示了新型异黄酮和虫草发酵的最佳培养时间

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Germinated soybean (GS) cultivated with Cordyceps militaris (GSC) might be a promising efficacious source of novel bioactive compounds. In this study, the metabolome changes between GS and GSC were investigated by liquid chromatography-mass spectrometry (LC-MS) and gas chromatography-mass spectrometry (GC-MS) analysis coupled with a multivariate data set. Principal component analysis (PCA) and orthogonal projection to latent structures discriminate analysis (OPLS-DA) of GSC clearly showed higher levels of soyasaponin Bd, soyasaponin Bc(II), daidzein, genistein, four isoflavones (compounds 1-4), glycerol, proline, glutamine, pentitol, fructose, inositol, octadecanoic acid, and sucrose together with lower levels of pyroglutamic acid, citric acid, histidine, and palmitic acid in GSC than in GS. The structures of compounds 1-4 were analyzed by mass and NMR spectroscopy and were determined to be novel isoflavone methyl-glycosides (daidzein 7-O-β-D-glucoside 4"-O-methylate (1), glycitein 7-O-β-D-glucoside 4"-O-methyl-ate (2), genistein 7-O-β-D-glucoside 4"-O-methylate (3), and genistein 4'-O-β-D-glucoside 4"-O methylate (4)). Multivariate statistical models showed that metabolic changes of GSC were maximal within 1 week after the C. militaris inoculation, consistent with the strongest antioxidant activity of GSC cultivated for 1 week. This metabolomics study provides valuable information in regard to optimizing the cultivation process for bioactive compound production and describes an efficient way to screen for novel bioactive compounds from GSC.
机译:用mil虫草(GSC)培育的发芽大豆(GS)可能是新型生物活性化合物的有希望的有效来源。在这项研究中,通过液相色谱-质谱(LC-MS)和气相色谱-质谱(GC-MS)分析以及多变量数据集,研究了GS和GSC之间的代谢组变化。 GSC的主成分分析(PCA)和正交投影到潜在结构判别分析(OPLS-DA)清楚地表明,大豆皂苷Bd,大豆皂苷Bc(II),大豆苷元,染料木黄酮,四种异黄酮(化合物1-4),甘油,与GS相比,GSC中脯氨酸,谷氨酰胺,戊糖醇,果糖,肌醇,十八烷酸和蔗糖的焦谷氨酸,柠檬酸,组氨酸和棕榈酸含量较低。化合物1-4的结构通过质谱和NMR光谱分析,并且被确定为新颖的异黄酮甲基-糖苷(大豆苷元7-O-β-D-葡糖苷4” -O-甲基化物(1),糖蛋白7-O- β-D-葡萄糖苷4“ -O-甲基化物(2),染料木素7-O-β-D-葡萄糖苷4” -O-甲基化物(3)和染料木素4'-O-β-D-葡萄糖苷4 --O甲基化物(4))。多变量统计模型表明,接种鱼后1周内GSC的代谢变化最大,这与培养1周的GSC的最强抗氧化活性一致。这项代谢组学研究为优化生物活性化合物生产的培养过程提供了有价值的信息,并描述了从GSC筛选新型生物活性化合物的有效方法。

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