Department of Natural Product Chemistry, Key Laboratory of Chemical Biology (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan, 250012, PR China.
Department of Natural Product Chemistry, Key Laboratory of Chemical Biology (Ministry of Education), School of Pharmaceutical Sciences, Shandong University, Jinan, 250012, PR China.
Plant Sci. 2020 Oct;299:110577. doi: 10.1016/j.plantsci.2020.110577. Epub 2020 Jun 23.
Flavonoid glucosides, typically generated from aglycones via the action of uridine diphosphate-dependent glycosyltransferases (UGTs), both contribute to plant viability and are pharmacologically active. The properties of UGTs produced by liverworts, one of the basal groups of non-vascular land plants, have not been systematically explored. Here, two UGTs potentially involved in flavonoids synthesis were identified from the transcriptome of Plagiochasma appendiculatum. Enzymatic analysis showed that PaUGT1 and PaUGT2 accepted various flavones, flavonols, flavanones and dihydrochalcones as substrates. A mutated form PaUGT1-Q19A exhibited a higher catalytic efficiency than did the wild type enzyme. When expressed in Escherichia coli, the yield of flavonol 7-O-glucosides reached to over 70 %. Co-expression of PaUGT1-Q19A with the upstream flavone synthase I PaFNS I-1 proved able to convert the flavanone aglycones naringenin and eriodictyol into the higher-yield apigenin 7-O-glucoside (A7G) and luteolin 7-O-glucoside (L7G). The maximum concentration of 81.0 μM A7G and 88.6 μM L7G was achieved upon supplementation with 100 μM naringenin and 100 μM eriodictyol under optimized conditions. This is the first time that flavonoids UGTs have been characterized from liverworts and co-expression of UGTs and FNS Is from the same species serves as an effective strategy to synthesize flavone 7-O-glucosides in E. coli.
类黄酮糖苷通常通过尿苷二磷酸依赖性糖基转移酶(UGTs)作用于苷元生成,对植物的生存能力和药理学活性都有贡献。然而,叶附生植物(非维管束陆地植物的基群之一)产生的 UGT 的特性尚未被系统地探索过。本研究从细鳞毛蕨转录组中鉴定出两个可能参与类黄酮合成的 UGT。酶活性分析表明,PaUGT1 和 PaUGT2 可以接受多种黄酮、黄酮醇、黄烷酮和二氢查耳酮作为底物。突变型 PaUGT1-Q19A 的催化效率高于野生型。当在大肠杆菌中表达时,黄酮醇 7-O-葡萄糖苷的产量达到 70%以上。将 PaUGT1-Q19A 与上游黄酮合成酶 I PaFNS I-1 共表达,证明能够将黄烷酮苷元柚皮素和圣草酚转化为产率更高的芹菜素 7-O-葡萄糖苷(A7G)和木犀草素 7-O-葡萄糖苷(L7G)。在优化条件下,当添加 100 μM 柚皮素和 100 μM 圣草酚时,A7G 和 L7G 的最大浓度分别达到 81.0 μM 和 88.6 μM。这是首次从叶附生植物中鉴定出类黄酮 UGT,并且从同一物种中共表达 UGT 和 FNS I 是在大肠杆菌中合成黄酮 7-O-葡萄糖苷的有效策略。