首页> 美国卫生研究院文献>DNA Research: An International Journal for Rapid Publication of Reports on Genes and Genomes >Genome-Wide Expression Profiling of Soybean Two-Component System Genes in Soybean Root and Shoot Tissues under Dehydration Stress
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Genome-Wide Expression Profiling of Soybean Two-Component System Genes in Soybean Root and Shoot Tissues under Dehydration Stress

机译:脱水胁迫下大豆双组分系统基因在大豆根芽组织中的全基因表达谱分析

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摘要

Two-component systems (TCSs) play vital functions in the adaptation of plants to environmental stresses. To identify soybean TCS genes involved in the regulation of drought stress response, we performed tissue-specific expression profiling of all 83 putative TCS genes in plants subjected to dehydration. Under well-watered conditions, the majority of soybean TCS genes were expressed higher in the root tissues. Additionally, a high variability in transcript abundance was observed for the TCS genes in both roots and shoots. Under dehydration, TCS genes were more responsive in shoots than in roots. Further analysis indicated that 50% more TCS genes were repressed by dehydration than induced. Specifically, 18 genes were induced by 2-fold or more, whereas 33 genes were down-regulated at least 2-fold by dehydration. TCS genes putatively involved in cytokinin and ethylene signallings strongly responded to dehydration, suggesting that crosstalk exists between different hormonal and stress pathways. Our study provides the first glance into the complex regulatory roles of soybean TCSs underlying their functions in response to dehydration. Additionally, these systematic expression analyses identified excellent dehydration-responsive candidate genes to further clarify soybean TCS functions in drought response and to enable the development of improved drought tolerance in transgenic soybeans.
机译:两成分系统(TCS)在植物适应环境压力方面起着至关重要的作用。为了鉴定参与调控干旱胁迫反应的大豆TCS基因,我们对遭受脱水的植物中所有83个推定的TCS基因进行了组织特异性表达谱分析。在水分充足的条件下,大多数大豆TCS基因在根组织中表达更高。另外,在根和芽中,TCS基因的转录丰度都有很高的变异性。在脱水条件下,TCS基因在芽中的反应比在根中的反应更快。进一步的分析表明,脱水抑制的TCS基因多于诱导的50%。具体而言,通过2倍或更多倍诱导18个基因,而通过脱水至少33倍下调33个基因。推测参与细胞分裂素和乙烯信号传导的TCS基因对脱水反应强烈,表明不同的激素途径和应激途径之间存在串扰。我们的研究提供了对大豆TCS潜在的复杂调节作用的第一印象,这些作用是其响应脱水的功能。另外,这些系统的表达分析鉴定了优异的脱水反应候选基因,以进一步阐明大豆TCS在干旱反应中的功能,并能够提高转基因大豆的耐旱性。

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