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Functional Differentiation of Duplicated Flavonoid 3-O-Glycosyltransferases in the Flavonol and Anthocyanin Biosynthesis of Freesia hybrida

机译:小苍兰的黄酮醇和花色苷生物合成中重复的类黄酮3-O-糖基转移酶的功能分化

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摘要

Flavonols and anthocyanins are two widely distributed groups of flavonoids that occurred apart during plant evolution and biosynthesized by shared specific enzymes involved in flavonoid metabolism. UDP-glucose, flavonoid 3-O-glycosyltransferase (UF3GT), is one of the common enzymes which could catalyze the glycosylation of both flavonol and anthocyanidin aglycons simultaneously in vitro. However, whether and how UF3GT paralogous genes function diversely at the biochemical and transcriptional levels are largely unknown. Recently, Fh3GT1 was identified to be a member of UF3GTs in Freesia hybrida. However, its expression patterns and enzymatic characteristics could not coincide well with flavonol accumulation. In an attempt to characterize other flavonoids, especially flavonol glycosyltransferase genes in Freesia, three closest candidate UFGT genes—Fh3GT2, Fh3GT3, and Fh3GT4—were mined from the Freesia transcriptomic database and isolated from the flowers of the widely distributed Freesia cultivar, Red River®. Based on bioinformatic analysis and enzymatic assays, Fh3GT2 turned out to be another bona fide glycosyltransferase gene. Biochemical analysis further proved that Fh3GT2 preferentially glucosylated kaempferol while Fh3GT1 controlled the glucosylation of quercetin and anthocyanidins. In addition, transfection assays demonstrated that Fh3GT2 could be mainly activated by the flavonol regulator FhMYBF1 or the anthocyanin regulator FhPAP1, whereas Fh3GT1 could only be activated by FhPAP1. These findings suggested that Fh3GTs might have functionally diverged in flavonoid biosynthesis at both the biochemical and transcriptional levels.
机译:黄酮醇和花青素是两类分布广泛的类黄酮,它们在植物进化过程中分开出现,并由参与类黄酮代谢的特定酶生物合成。 UDP-葡萄糖,类黄酮3-O-糖基转移酶(UF3GT),是一种可在体外同时催化黄酮醇和花色素苷元糖苷的糖基化反应的常见酶之一。但是,UF3GT旁系基因在生化和转录水平上是否以及如何发挥不同的功能尚不清楚。最近,Fh3GT1被鉴定为小苍兰中UF3GTs的成员。然而,其表达方式和酶促特性与黄酮醇的积累并不一致。为了表征小苍兰中的其他黄酮类化合物,尤其是黄酮醇糖基转移酶基因,从小苍兰转录组数据库中提取了三个最接近的候选UFGT基因Fh3GT2,Fh3GT3和Fh3GT4,并从分布广泛的小苍兰品种Red River < sup>®。根据生物信息学分析和酶促测定,Fh3GT2证明是另一个真正的糖基转移酶基因。生化分析进一步证明,Fh3GT2优先对糖基山emp酚进行糖化,而Fh3GT1则控制槲皮素和花色素苷的糖基化。此外,转染试验表明, Fh3GT2 可以主要由黄酮调节剂FhMYBF1或花色苷调节剂FhPAP1激活,而 Fh3GT1 只能由FhPAP1激活。这些发现表明 Fh3GT 可能在生化和转录水平上在类黄酮生物合成中功能上有所不同。

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