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Widely targeted metabolome and transcriptome landscapes of Allium fistulosum–A. cepa chromosome addition lines revealed a flavonoid hot spot on chromosome 5A

机译:广泛针对的葱属A代谢组和转录组景观。 cepa染色体添加系显示5A染色体上存在类黄酮热点

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摘要

Here, we report a comprehensive analysis of the widely targeted metabolome and transcriptome profiles of Allium fistulosum L. (FF) with the single extra chromosome of shallot [A. cepa L. Aggregatum group (AA)] to clarify the novel gene functions in flavonoid biosynthesis. An exhaustive metabolome analysis was performed using the selected reaction monitoring mode of liquid chromatography–tandem quadrupole mass spectrometry, revealing a specific accumulation of quercetin, anthocyanin and flavone glucosides in AA and FF5A. The addition of chromosome 5A from the shallot to A. fistulosum induced flavonoid accumulation in the recipient species, which was associated with the upregulation of several genes including the dihydroflavonol 4-reductase, chalcone synthase, flavanone 3-hydroxylase, UDP-glucose flavonoid-3-O-glucosyltransferase, anthocyanin 5-aromatic acyltransferase-like, pleiotropic drug resistance-like ATP binding cassette transporter, and MYB14 transcriptional factor. Additionally, an open access Allium Transcript Database (Allium TDB, ) was generated by using RNA-Seq data from different genetic stocks including the A. fistulosum–A. cepa monosomic addition lines. The functional genomic approach presented here provides an innovative means of targeting the gene responsible for flavonoid biosynthesis in A. cepa. The understanding of flavonoid compounds and biosynthesis-related genes would facilitate the development of noble Allium varieties with unique chemical constituents and, subsequently, improved plant stress tolerance and human health benefits.
机译:在这里,我们报告了葱头的单个额外染色体[A. Fistulosum L.(FF)]广泛针对的代谢组和转录组谱的全面分析。 cepa L. Aggregatum group(AA)]来阐明类黄酮生物合成中的新基因功能。使用液相色谱-串联四极杆质谱的选定反应监测模式进行了详尽的代谢组学分析,揭示了槲皮素,花色苷和黄酮苷在AA和FF5A中的特定积累。葱中添加5A染色体到瘘管中引起类黄酮积累,这与包括二氢黄酮4-还原酶,查尔酮合酶,黄烷酮3-羟化酶,UDP-葡萄糖类黄酮3在内的几个基因的上调有关。 -O-葡萄糖基转移酶,花色苷5-芳香族酰基转移酶样,多效药物抗药性样ATP结合盒转运蛋白和MYB14转录因子。此外,使用来自包括A. fistulosum-A在内的不同遗传种群的RNA-Seq数据,生成了一个开放访问的葱属转录本数据库(Allium TDB,)。 cepa 单体加成系。本文介绍的功能基因组学方法为靶向负责 A 中类黄酮生物合成的基因提供了一种创新手段。 cepa 。对类黄酮化合物和生物合成相关基因的理解将促进具有独特化学成分的高贵 Allium 品种的开发,进而改善植物的耐逆性和对人类健康的益处。

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