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首页> 外文期刊>Genetics and molecular biology: publication of the Sociedade Brasileira de Genetica >Differential gene expression and mitotic cell analysis of the drought tolerant soybean (Glycine max L. Merrill Fabales, Fabaceae) cultivar MG/BR46 (Conquista) under two water deficit induction systems
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Differential gene expression and mitotic cell analysis of the drought tolerant soybean (Glycine max L. Merrill Fabales, Fabaceae) cultivar MG/BR46 (Conquista) under two water deficit induction systems

机译:两种水分亏缺诱导系统下耐旱大豆(MG)的品种(MG)的差异基因表达和有丝分裂细胞分析

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摘要

Drought cause serious yield losses in soybean (Glycine max), roots being the first plant organ to detect the water-stress signals triggering defense mechanisms. We used two drought induction systems to identify genes differentially expressed in the roots of the drought-tolerant soybean cultivar MG/BR46 (Conquista) and characterize their expression levels during water deficit. Soybean plants grown in nutrient solution hydroponically and in sand-pots were submitted to water stress and gene expression analysis was conducted using the differential display (DD) and real time polymerase chain reaction (PCR) techniques. Three differentially expressed mRNA transcripts showed homology to the Antirrhinum majus basic helix-loop-helix transcription factor bHLH, the Arabidopsis thaliana phosphatidylinositol transfer protein PITP and the auxin-independent growth regulator 1 (axi 1). The hydroponic experiments showed that after 100 min outside the nutrient solution photosynthesis completely stopped, stomata closed and leaf temperature rose. Both stress induction treatments produced significant decrease in the mitotic indices of root cells. Axi 1, PITP and bHLH were not only differentially expressed during dehydration in the hydroponics experiments but also during induced drought in the pot experiments. Although, there were differences between the two sets of experiments in the time at which up or down regulation occurred, the expression pattern of all three transcripts was related. Similar gene expression and cytological analysis results occurred in both systems, suggesting that hydroponics could be used to simulate drought detection by roots growing in soil and thus facilitate rapid and easy root sampling.
机译:干旱导致大豆(Glycine max)严重减产,其根部是第一个检测水分胁迫信号触发防御机制的植物器官。我们使用两个干旱诱导系统来鉴定在耐旱大豆品种MG / BR46(Conquista)的根中差异表达的基因,并表征其在缺水期间的表达水平。在营养液中水培和在砂锅中生长的大豆植物受到水分胁迫,并使用差异显示(DD)和实时聚合酶链反应(PCR)技术进行基因表达分析。三个差异表达的mRNA转录本显示出与马来亚青螺基本螺旋-环-螺旋转录因子bHLH,拟南芥磷脂酰肌醇转移蛋白PITP和独立于植物生长素的生长调节剂1(axi 1)同源。水培试验表明,在营养液外100分钟后,光合作用完全停止,气孔关闭,叶片温度上升。两种胁迫诱导处理均使根细胞的有丝分裂指数显着降低。 Axi 1,PITP和bHLH不仅在水培实验中脱水期间差异表达,而且在盆栽实验中诱导干旱期间差异表达。尽管在上调或下调发生的时间上两组实验之间存在差异,但所有三个转录本的表达方式均相关。在两个系统中都发生了相似的基因表达和细胞学分析结果,这表明水培法可用于模拟土壤中根系生长的干旱检测,从而有助于快速,轻松地进行根系采样。

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