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首页> 外文期刊>Frontiers in Plant Science >Biochemical and Molecular Characterization of a Flavonoid 3- O-glycosyltransferase Responsible for Anthocyanins and Flavonols Biosynthesis in Freesia hybrida
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Biochemical and Molecular Characterization of a Flavonoid 3- O-glycosyltransferase Responsible for Anthocyanins and Flavonols Biosynthesis in Freesia hybrida

机译:负责 Freesia hybrida 花色苷和黄酮醇生物合成的类黄酮3- O -糖基转移酶的生化和分子表征

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The glycosylation of flavonoids increases their solubility and stability in plants. Flowers accumulate anthocyanidin and flavonol glycosides which are synthesized by UDP-sugar flavonoid glycosyltransferases (UFGTs). In our previous study, a cDNA clone ( Fh3GT1 ) encoding UFGT was isolated from Freesia hybrida , which was preliminarily proved to be invovled in cyanidin 3- O -glucoside biosynthesis. Here, a variety of anthocyanin and flavonol glycosides were detected in flowers and other tissues of F. hybrida , implying the versatile roles of Fh3GT1 in flavonoids biosynthesis. To further unravel its multi-functional roles, integrative analysis between gene expression and metabolites was investigated. The results showed expression of Fh3GT1 was positively related to the accumulation of anthocyanins and flavonol glycosides, suggesting its potential roles in the biosynthesis of both flavonoid glycosides. Subsequently, biochemical analysis results revealed that a broad range of flavonoid substrates including flavonoid not naturally occurred in F. hybrida could be recognized by the recombinant Fh3GT1. Both UDP-glucose and UDP-galactose could be used as sugar donors by recombinant Fh3GT1, although UDP-galactose was transferred with relatively low activity. Furthermore, regiospecificity analysis demonstrated that Fh3GT1 was able to glycosylate delphinidin at the 3-, 4-′, and 7- positions in a sugar-dependent manner. And the introduction of Fh3GT1 into Arabidopsis UGT78D2 mutant successfully restored the anthocyanins and flavonols phenotypes caused by lost-of-function of the 3GT , indicating that Fh3GT1 functions as a flavonoid 3- O -glucosyltransferase in vivo . In summary, these results demonstrate that Fh3GT1 is a flavonoid 3- O -glycosyltransferase using UDP-glucose as the preferred sugar donor and may involve in flavonoid glycosylation in F. hybrida.
机译:类黄酮的糖基化增加了它们在植物中的溶解度和稳定性。花会积聚花色苷和黄酮糖苷,它们是由UDP糖类黄酮糖基糖基转移酶(UFGTs)合成的。在我们先前的研究中,从小苍兰中分离到一个编码UFGT的cDNA克隆(Fh3GT1),该克隆已被初步证明参与花青素3-O-葡萄糖苷的生物合成。在这里,在F. hybrida的花朵和其他组织中检测到多种花色苷和黄酮糖苷,这暗示Fh3GT1在类黄酮生物合成中具有多种作用。为了进一步阐明其多功能作用,研究了基因表达与代谢产物之间的整合分析。结果表明,Fh3GT1的表达与花色苷和黄酮糖苷的积累呈正相关,表明其在两种黄酮苷的生物合成中均具有潜在作用。随后,生化分析结果表明,重组Fh3GT1可以识别广泛的类黄酮底物,包括在F. hybrida中不天然存在的类黄酮。 UDP-葡萄糖和UDP-半乳糖均可被重组Fh3GT1用作糖供体,尽管UDP-半乳糖的转移活性相对较低。此外,区域特异性分析表明,Fh3GT1能够以糖依赖性方式在3-,4-'和7-位糖基化蝶呤。并且将Fh3GT1引入拟南芥UGT78D2突变体中成功地恢复了由3GT功能丧失引起的花色苷和黄酮醇表型,表明Fh3GT1在体内起类黄酮3-O-葡萄糖基转移酶的作用。总之,这些结果证明Fh3GT1是使用UDP-葡萄糖作为优选的糖供体的类黄酮3-O-糖基转移酶,并且可能参与杂合子中的类黄酮糖基化。

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