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Buckwheat R2R3 MYB transcription factor FeMYBF1 regulates flavonol biosynthesis

机译:荞麦R2R3 MYB转录因子FEMYBF1调节黄酮化生物合成

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Buckwheat (Fagopyrum esculentum) contains high amounts of flavonoids, especially flavonols (e.g., rutin), which are thought to be highly beneficial for human health. Little is known, however, about the regulation of flavonol synthesis in buckwheat. We identified a buckwheat gene encoding an R2R3 MYB transcription factor, and named this gene FeMYBF1. Analysis of the deduced amino acid sequence and phylogenetic analysis suggested that FeMYBF1 encodes an ortholog of the Arabidopsis fiavonol regulators AtMYB11, AtMYB12 and AtMYB111. Expression of FeMYBF1 in a fiavonol-deficient Arabidopsis triple mutant (myb11 myb12 myb111) restored flavonol synthesis. Constitutive expression of FeMYBF1 driven by the CaMV 35S promoter in Arabidopsis resulted in over-accumulation of flavonol glycosides and upregulation of the expression of AtFLS1. Transient expression assays showed that FeMYBF1 activated the promoter of the Arabidopsis gene encoding AtFLS1, and the promoters of buckwheat genes related to anthocyanin and proanthocyanidin synthesis such as dihydroflavonol 4-reductase (DFR) and Ieucoanthocyanidin dioxygenase (LDOX) in addition to genes encoding FLS. The results indicate that FeMYBF1 regulates fiavonol synthesis and may have a role in synthesis of other flavonoid compounds, and also that buckwheat may have alternative pathway of flavonol synthesis through DFR and LDOX.
机译:荞麦(FagoPyrum Esculentum)含有大量的黄酮类化合物,特别是黄酮醇(例如,芦丁),被认为对人类健康有着高度有益。然而,对于在荞麦中的黄酮合成的调节,众所周知。我们鉴定了编码R2R3 MYB转录因子的荞麦基因,并命名该基因FemyBF1。分析推导的氨基酸序列和系统发育分析表明,FemyBF1编码了拟南芥的正态,Arabidopsis Fiavonol调节因子AtmyB11,AtmyB12和AtmyB111。 Feavonol缺陷拟南芥三重突变体中Femybf1的表达(MyB11 myB12 myB111)恢复了黄酮合成。 CAMV 35S启动子在拟南芥中驱动的FEMYBF1的组成型表达导致黄酮苷糖苷的过度积累,并升级ATFLS1的表达。瞬时表达测定表明,Femybf1除了编码FLS的基因之外,FEMYBF1在编码ATFLS1编码的拟南芥基因的启动子,以及与花青素和原花青素合成的荞麦基因的启动子。结果表明,FemyBF1调节Fiavonol合成,并且可以在合成其他类黄酮化合物的合成中作用,并且还可以通过DFR和Ldox具有黄酮醇合成的替代途径。

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