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Deep Sequencing of the Scutellaria baicalensis Georgi Transcriptome Reveals Flavonoid Biosynthetic Profiling and Organ-Specific Gene Expression

机译:黄cutGeorgi转录组的深度测序揭示了类黄酮的生物合成和器官特定基因表达。

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摘要

Scutellaria baicalensis Georgi has long been used in traditional medicine to treat various such widely varying diseases and has been listed in the Chinese Pharmacopeia, the Japanese Pharmacopeia, the Korean Pharmacopoeia and the European Pharmacopoeia. Flavonoids, especially wogonin, wogonoside, baicalin, and baicalein, are its main functional ingredients with various pharmacological activities. Although pharmaological studies for these flavonoid components have been well conducted, the molecular mechanism of their biosynthesis remains unclear in S. baicalensis. In this study, Illumina/Solexa deep sequencing generated more than 91 million paired-end reads and 49,507 unigenes from S. baicalensis roots, stems, leaves and flowers. More than 70% unigenes were annotated in at least one of the five public databases and 13,627 unigenes were assigned to 3,810 KEGG genes involved in 579 different pathways. 54 unigenes that encode 12 key enzymes involved in the pathway of flavonoid biosynthesis were discovered. One baicalinase and three baicalein 7-O-glucuronosyltransferases genes potentially involved in the transformation between baicalin/wogonoside and baicalein/wogonin were identified. Four candidate 6-hydroxylase genes for the formation of baicalin/baicalein and one candidate 8-O-methyltransferase gene for the biosynthesis of wogonoside/wogonin were also recognized. Our results further support the conclusion that, in S. baicalensis, 3,5,7-trihydroxyflavone was the precursor of the four above compounds. Then, the differential expression models and simple sequence repeats associated with these genes were carefully analyzed. All of these results not only enrich the gene resource but also benefit research into the molecular genetics and functional genomics in S. baicalensis.
机译:黄cut药草长期以来一直在传统医学中用于治疗各种此类广泛变化的疾病,并已在中国药典,日本药典,韩国药典和欧洲药典中列出。黄酮类化合物,特别是沃戈宁,沃戈甙,黄ical苷和黄ical苷,是其具有各种药理活性的主要功能成分。尽管已对这些类黄酮成分进行了药理研究,但在黄ical中仍不清楚其生物合成的分子机制。在这项研究中,Illumina / Solexa深度测序从黄ical的根,茎,叶和花中产生了超过9,100万对配对末端读段和49,507个单基因。在五个公共数据库中的至少一个中,超过70%的单基因被注释,并且将13627个单基因分配给涉及579种不同途径的3,810个KEGG基因。发现了54种编码类黄酮生物合成途径中的12种关键酶的单基因。鉴定了可能与黄ical苷/牛go苷和黄ical苷/ wogonin之间的转化有关的一个黄ical苷酶和三个黄ical苷7-O-葡糖醛酸糖基转移酶基因。还确认了用于形成黄ical苷/黄ical苷的四个候选6-羟化酶基因和用于生物合成皂甙/ wogonin的一个候选8-O-甲基转移酶基因。我们的结果进一步支持了以下结论:在黄ical中,3,5,7-三羟基黄酮是上述四种化合物的前体。然后,仔细分析与这些基因相关的差异表达模型和简单序列重复。所有这些结果不仅丰富了基因资源,而且有益于黄ba的分子遗传学和功能基因组学研究。

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