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首页> 外文期刊>Frontiers in Plant Science >Aromatic Glucosinolate Biosynthesis Pathway in Barbarea vulgaris and its Response to Plutella xylostella Infestation
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Aromatic Glucosinolate Biosynthesis Pathway in Barbarea vulgaris and its Response to Plutella xylostella Infestation

机译:<斜视> Barbarea寻常的芳族葡萄糖苷生物合成途径及其对<斜视> Plutella Xylostella的反应侵扰

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摘要

The inducibility of the glucosinolate resistance mechanism is an energy-saving strategy for plants, but whether induction would still be triggered by glucosinolate-tolerant Plutella xylostella (diamondback moth, DBM) after a plant had evolved a new resistance mechanism (e.g., saponins in Barbara vulgaris ) was unknown. In B. vulgaris , aromatic glucosinolates derived from homo-phenylalanine are the dominant glucosinolates, but their biosynthesis pathway was unclear. In this study, we used G-type (pest-resistant) and P-type (pest-susceptible) B. vulgaris to compare glucosinolate levels and the expression profiles of their biosynthesis genes before and after infestation by DBM larvae. Two different stereoisomers of hydroxylated aromatic glucosinolates are dominant in G- and P-type B. vulgaris , respectively, and are induced by DBM. The transcripts of genes in the glucosinolate biosynthesis pathway and their corresponding transcription factors were identified from an Illumina dataset of G- and P-type B. vulgaris . Many genes involved or potentially involved in glucosinolate biosynthesis were induced in both plant types. The expression patterns of six DBM induced genes were validated by quantitative PCR (qPCR), while six long-fragment genes were validated by molecular cloning. The core structure biosynthetic genes showed high sequence similarities between the two genotypes. In contrast, the sequence identity of two apparent side chain modification genes, the SHO gene in the G-type and the RHO in P-type plants, showed only 77.50% identity in coding DNA sequences and 65.48% identity in deduced amino acid sequences. The homology to GS-OH in Arabidopsis , DBM induction of the transcript and a series of qPCR and glucosinolate analyses of G-type, P-type and F_(1)plants indicated that these genes control the production of S and R isomers of 2-hydroxy-2-phenylethyl glucosinolate. These glucosinolates were significantly induced by P. xylostella larvae in both the susceptiple P-type and the resistant G-type, even though saponins are the main DBM-resistance causing metabolites in G-type plants. Indol-3-ylmethylglucosinolate was induced in the G-type only. These data will aid our understanding of the biosynthesis and induction of aromatic glucosinolates at the molecular level and also increase our knowledge of the complex mechanisms underpinning defense induction in plants.
机译:葡萄糖苷抗性机制的诱导性是植物的节能策略,但在植物演进后的新抗性机制(例如,Barbara中的皂苷中,诱导诱导植物是否仍然被葡糖苷酸普拉特菌菌(Diamondback蛾)引发vulgaris)未知。在B.寻常族,衍生自苯丙氨酸的芳香素糖苷是主要的葡糖苷,但它们的生物合成途径尚不清楚。在这项研究中,我们使用了G-Type(抗病)和p型(害虫易感性)B. Ventgaris以比较DBM幼虫的侵扰前后生物合成基因的葡萄糖素水平和表达谱。羟基化芳族藻糖酸盐的两种不同的立体异构体分别以G型和P型B.寻常致常见,并通过DBM诱导。葡萄糖酸盐生物合成途径中基因的转录物及其相应的转录因子是从G-和P型B.B的illumina dataset鉴定。在两种植物类型中诱导了涉及或可能参与葡糖苷生物合成的许多基因。通过定量PCR(QPCR)验证六dBM诱导基因的表达模式,而通过分子克隆验证六个长片段基因。核心结构生物合成基因在两种基因型之间显示出高序列相似性。相反,两个表观侧链改性基因的序列同一性,G型和p型植物中的rhO中的脉络基因,在编码DNA序列中仅显示了77.50%的同一性,并且推导的氨基酸序列中的65.48%的同一性。在拟南芥中对GS-OH的同源性,转录物的DBM诱导和G型,p型和F_(1)植物的一系列QPCR和葡糖苷分析表明这些基因控制了2的S和R异构体的产生 - 羟基-2-苯乙基氨基糖苷。在粘合P型和抗性G型中,P. Xylostella幼虫显着诱导这些氨基葡萄糖酸盐,即使皂苷是导致G型植物代谢物的主要DBM抗性,也是如此。仅在G型中诱导吲哚-3-基甲基硫磺酸盐。这些数据将有助于我们对分子水平的生物合成和芳香素糖苷的诱导的理解,并且还提高了我们对植物中营养诱导的复杂机制的了解。

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