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Comparison of Transcriptome Differences in Soybean Response to Soybean Mosaic Virus under Normal Light and in the Shade

机译:正常光照和阴凉条件下大豆对大豆花叶病毒应答的转录组差异比较

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摘要

Shading in the intercropping system is a major abiotic factor which influences soybean growth and development, while soybean mosaic virus (SMV) is a biotic factor that limits the yield and quality of soybean. However, little is known about the defense response of soybean to SMV in the shade. Thus, in the current study, both intensity and quality (red:far-red, R:FR) of the light were changed to simulate the shaded environment and comparative transcriptome analysis was performed. Morphologically, plant growth was inhibited by SMV, which decreased 35.93% of plant height and 8.97% of stem diameter in the shade. A total of 3548 and 4319 differentially expressed genes (DEGs) were identified in soybean plants infected with SMV under normal light and in the shade. Enrichment analysis showed that the plant defense-related genes were upregulated under normal light but downregulated in the shade. Pathways that were repressed include plant-pathogen interaction, secondary metabolism, sugar metabolism, and vitamin metabolism. In addition, genes associated with signaling pathways such as salicylic acid (SA), jasmonic acid (JA), and ethylene (ETH) were also downregulated in the shade. A qRT-PCR assay of 15 DEGs was performed to confirm transcriptome results. According to our knowledge, this is the first report on soybean response to dual stress factors. These results provide insights into the molecular mechanisms in which soybean plants were infected with SMV in the shade.
机译:间作系统中的阴影是影响大豆生长发育的主要非生物因素,而大豆花叶病毒(SMV)是限制大豆产量和品质的生物因素。然而,关于树荫下大豆对SMV的防御反应知之甚少。因此,在当前的研究中,改变了光的强度和质量(红色:远红色,R:FR)以模拟阴影环境,并进行了比较转录组分析。从形态上讲,SMV抑制了植物的生长,使SMV降低了35.93%的植物高度,降低了树荫下茎直径的8.97%。在普通光和阴凉条件下,被SMV感染的大豆植物中共鉴定出3548和4319个差异表达基因(DEG)。富集分析表明,与植物防御相关的基因在正常光照下被上调,但在阴影下被下调。被抑制的途径包括植物-病原体相互作用,次级代谢,糖代谢和维生素代谢。此外,阴影中也下调了与信号通路相关的基因,例如水杨酸(SA),茉莉酸(JA)和乙烯(ETH)。进行了15个DEG的qRT-PCR分析,以确认转录组结果。据我们了解,这是关于大豆对双重胁迫因素反应的第一份报告。这些结果提供了深入了解大豆植物在阴影下感染SMV的分子机制的见解。

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