经络
橙皮苷
类黄酮
柚皮苷
化学
柚皮素
生物化学
鼠李糖
类黄酮生物合成
橙皮素
生物合成
双糖
代谢工程
黄烷酮
半乳糖
酶
色谱法
抗氧化剂
医学
基因表达
替代医学
转录组
病理
基因
作者
Zhiyi Xiao,Y. WANG,Juan Liu,Siqi Zhang,Xinjia Tan,Yifei Zhao,Jiwei Mao,Ning Jiang,Jingwen Zhou,Yang Shan
标识
DOI:10.1021/acssynbio.3c00348
摘要
Flavonoids are an essential class of secondary metabolites found in plants and possess various nutritional, medicinal, and agricultural properties. However, the poor water solubility of flavonoid aglycones limits their potential applications. To overcome this issue, glycosylation is a promising approach for improving water solubility and bioavailability. In this study, we constructed a flavonoid-7-O-disaccharide biosynthetic pathway with flavonoid aglycones as substrates in Saccharomyces cerevisiae. Subsequently, through metabolic engineering and promoter strategies, we constructed a UDP-rhamnose regeneration system and optimized the UDP-glucose (UDPG) synthetic pathway. The optimized strain produced up to 131.3 mg/L eriocitrin. After this, the chassis cells were applied to other flavonoids, with substrates such as (2S)-naringenin, (2S)-hesperetin, diosmetin, and (2S)-eriodictyol, which resulted in the synthesis of 179.9 mg/L naringin, 276.6 mg/L hesperidin, 249.0 mg/L neohesperidin, 30.4 mg/L diosmin, and 100.7 mg/L neoeriocitrin. To the best of our knowledge, this is the first report on the biosynthesis of flavonoid-7-O-disaccharide.
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