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Integrated mRNA and microRNA analysis identifies genes and small miRNA molecules associated with transcriptional and post-transcriptional-level responses to both drought stress and re-watering treatment in tobacco

机译:集成的mRNA和microRNA分析可鉴定与烟草中干旱胁迫和补水处理的转录和转录后水平反应相关的基因和小miRNA分子

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Background Drought stress is one of the most severe problem limited agricultural productivity worldwide. It has been reported that plants response to drought-stress by sophisticated mechanisms at both transcriptional and post-transcriptional levels. However, the precise molecular mechanisms governing the responses of tobacco leaves to drought stress and water status are not well understood. To identify genes and miRNAs involved in drought-stress responses in tobacco, we performed both mRNA and small RNA sequencing on tobacco leaf samples from the following three treatments: untreated-control (CL), drought stress (DL), and re-watering (WL). Results In total, we identified 798 differentially expressed genes (DEGs) between the DL and CL (DL vs. CL) treatments and identified 571 DEGs between the WL and DL (WL vs. DL) treatments. Further analysis revealed 443 overlapping DEGs between the DL vs. CL and WL vs. DL comparisons, and, strikingly, all of these genes exhibited opposing expression trends between these two comparisons, strongly suggesting that these overlapping DEGs are somehow involved in the responses of tobacco leaves to drought stress. Functional annotation analysis showed significant up-regulation of genes annotated to be involved in responses to stimulus and stress, (e.g., late embryogenesis abundant proteins and heat-shock proteins) antioxidant defense (e.g., peroxidases and glutathione S-transferases), down regulation of genes related to the cell cycle pathway, and photosynthesis processes. We also found 69 and 56 transcription factors (TFs) among the DEGs in, respectively, the DL vs. CL and the WL vs. DL comparisons. In addition, small RNA sequencing revealed 63 known microRNAs (miRNA) from 32 families and 368 novel miRNA candidates in tobacco. We also found that five known miRNA families (miR398, miR390, miR162, miR166, and miR168) showed differential regulation under drought conditions. Analysis to identify negative correlations between the differentially expressed miRNAs (DEMs) and DEGs revealed 92 mRNA-miRNA interactions between CL and DL plants, and 32 mRNA-miRNA interactions between DL and WL plants. Conclusions This study provides a global view of the transcriptional and the post-transcriptional responses of tobacco under drought stress and re-watering conditions. Our results establish an empirical foundation that should prove valuable for further investigations into the molecular mechanisms through which tobacco, and plants more generally, respond to drought stress at multiple molecular genetic levels.
机译:背景技术干旱压力是限制全球农业生产力的最严重问题之一。据报道,植物通过转录和转录后水平上的复杂机制对干旱胁迫作出反应。但是,控制烟草叶片对干旱胁迫和水分状况的响应的精确分子机制尚未得到很好的了解。为了鉴定参与烟草干旱胁迫反应的基因和miRNA,我们对以下三种处理方法的烟草叶片样品进行了mRNA和小RNA测序:未经处理的对照(CL),干旱胁迫(DL)和补水( WL)。结果总共,我们在DL和CL处理之间鉴定了798个差异表达基因(DEG)(DL vs. CL),在WL和DL处理之间鉴定了571个DEG(WL vs. DL)。进一步的分析显示,DL与CL比较和WL与DL比较之间存在443个重叠的DEG,而且引人注目的是,所有这些基因在这两个比较之间均显示出相反的表达趋势,强烈表明这些重叠的DEG某种程度上参与了烟草的反应离开干旱压力。功能注释分析显示,注释的基因显着上调参与了对刺激和应激的反应(例如,胚胎后期后期丰富的蛋白质和热休克蛋白),抗氧化剂防御作用(例如,过氧化物酶和谷胱甘肽S-转移酶),下调与细胞周期途径和光合作用过程有关的基因。我们还分别在DL对CL和WL对DL比较中发现了DEG之间的69和56个转录因子(TF)。此外,小RNA测序揭示了烟草中32个家族的63种已知microRNA(miRNA)和368种新型miRNA候选物。我们还发现五个已知的miRNA家族(miR398,miR390,miR162,miR166和miR168)在干旱条件下表现出不同的调控。鉴定差异表达的miRNA(DEM)和DEG之间负相关的分析揭示了CL和DL植物之间的92个mRNA-miRNA相互作用,以及DL和WL植物之间的32个mRNA-miRNA相互作用。结论本研究为干旱胁迫和再浇水条件下烟草的转录和转录后反应提供了一个整体视角。我们的研究结果建立了经验基础,对于进一步研究烟草和更广泛的植物在多种分子遗传水平上应对干旱胁迫的分子机制,应该被证明具有宝贵的经验。

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