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Combined metabolomic and transcriptomic analysis reveals key candidate genes involved in the regulation of flavonoid accumulation in Anoectochilus roxburghii

机译:代谢组学和转录组学分析相结合,揭示了参与调节金线莲中黄酮积累的关键候选基因

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摘要

Anoectochilus roxburghii, a species used in Chinese herbal medicine, has unique characteristics. This plant has important medicinal and ornamental value and is distributed primarily in China, including Fujian, Zhejiang, Jiangxi, and Guizhou provinces, and in Taiwan. Flavonoids are involved in leaf pigment formation and are major pharmacodynamic substances. However, the molecular mechanisms that regulate accumulation of flavonoids remain unclear, which has significantly limited their application. To elucidate the molecular mechanisms underlying the regulation of flavonoid accumulation in A. roxburghii, root, stem and leaf samples were collected for constructing transcriptomic and metabolomic datasets using RNA sequencing and liquid chromatography-mass spectrometry (LC-MS) techniques. Sequencing of the transcriptomes of the different organs generated 60.2 Gb of data, which were assembled into 186,865 unigenes. Metabolomic analysis resulted in the identification of 10,690 metabolites. Based on the ESI mode, 4,010, 4,008 and 4,013 metabolites were annotated in roots, stems, and leaves, respectively; based on the ESI- mode, 1,530, 1,530, and 1,531 metabolites were annotated, respectively. Differential analyses of the transcriptome and flavonoid metabolism of the different organs revealed the greatest significant differences between roots and leaves, followed by differences between stems and leaves; differences between roots and stems were the smallest. According to analysis of differentially expressed genes (DEGs), the secondary metabolism-related DEGs between roots and stems, between roots and leaves, and between leaves and stems were classified into 16, 21, and 19 secondary metabolic Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways, respectively. Among these pathways, flavonoid biosynthesis, flavone and flavonol biosynthesis, and isoflavonoid biosynthesis significantly differed in terms of both gene expression and secondary metabolism. Moreover, the key genes involved in flavonoid accumulation were comprehensively analyzed using metabolic and transcriptomic data, and ten transcription factor-encoding genes and fourteen flavonoid biosynthesis genes were identified. Specifically, four of the ten transcription factor-encoding genes appear to activate CHS, CHI, CYP75A and ANR gene expression. The combined approach used in this study provides an in-depth understanding of the molecular regulatory mechanisms underlying flavonoid accumulation in A. roxburghii and is a powerful tool that can uncover valuable information for plant breeders.
机译:中草药使用的金线莲具有独特的特征。这种植物具有重要的药用和观赏价值,主要分布在中国(包括福建,浙江,江西和贵州等省)和台湾。黄酮类化合物参与叶色素的形成,是主要的药效学物质。然而,调节类黄酮积累的分子机制仍然不清楚,这已大大限制了它们的应用。为了阐明潜在的拟南芥中黄酮类化合物积累的分子机制,使用RNA测序和液相色谱-质谱(LC-MS)技术收集根,茎和叶样品,以构建转录组和代谢组学数据集。不同器官的转录组测序产生了60.2 Gb的数据,这些数据被组装成186,865个单基因。代谢组学分析鉴定出10,690种代谢物。根据ESI模式,分别在根,茎和叶中标注了4,010、4,008和4,013种代谢物。基于ESI模式,分别注释了1,530、1,530和1,531种代谢物。对不同器官的转录组和类黄酮代谢的差异分析显示,根与叶之间存在最大的显着差异,其次是茎与叶之间存在差异。根和茎之间的差异最小。根据差异表达基因(DEG)的分析,根与茎之间,根与叶之间以及叶与茎之间的与次级代谢有关的次级DEG被分为16种,21种和19种次级代谢新京都议定书。 KEGG)路径。在这些途径中,黄酮类生物合成,黄酮和黄酮醇生物合成以及异类黄酮生物合成在基因表达和次级代谢方面均存在显着差异。此外,利用代谢和转录组数据对黄酮类化合物积累的关键基因进行了综合分析,确定了十个转录因子编码基因和十四个类黄酮生物合成基因。具体而言,十个转录因子编码基因中的四个似乎激活CHS,CHI,CYP75A和ANR基因表达。在这项研究中使用的组合方法提供了深入了解A.roxburghii中黄酮类化合物积累的分子调控机制,并且是可以为植物育种者揭示有价值信息的强大工具。

著录项

  • 来源
    《Process Biochemistry》 |2020年第4期|339-351|共13页
  • 作者

  • 作者单位

    Fujian Agr & Forestry Univ Coll Forestry Fuzhou Fujian Peoples R China|Fujian Agr & Forestry Univ Coll Landscape Architecture Fuzhou Fujian Peoples R China;

    Fujian Agr & Forestry Univ Coll Landscape Architecture Fuzhou Fujian Peoples R China;

    Fujian Agr & Forestry Univ Coll Forestry Fuzhou Fujian Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. roxburghii; Transcriptome; Metabolomics; Flavonoid metabolic pathway; Molecular regulatory mechanism;

    机译:A. roxburghii;转录组代谢组学类黄酮代谢途径;分子调控机制;

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