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Transcriptional profiling in response to terminal drought stress reveals differential responses along the wheat genome

机译:响应终端干旱胁迫的转录谱揭示了小麦基因组的差异响应

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Background Water stress during grain filling has a marked effect on grain yield, leading to a reduced endosperm cell number and thus sink capacity to accumulate dry matter. The bread wheat cultivar Chinese Spring (CS), a Chinese Spring terminal deletion line (CS_5AL-10) and the durum wheat cultivar Creso were subjected to transcriptional profiling after exposure to mild and severe drought stress at the grain filling stage to find evidences of differential stress responses associated to different wheat genome regions. Results The transcriptome analysis of Creso, CS and its deletion line revealed 8,552 non redundant probe sets with different expression levels, mainly due to the comparisons between the two species. The drought treatments modified the expression of 3,056 probe sets. Besides a set of genes showing a similar drought response in Creso and CS, cluster analysis revealed several drought response features that can be associated to the different genomic structure of Creso, CS and CS_5AL-10. Some drought-related genes were expressed at lower level (or not expressed) in Creso (which lacks the D genome) or in the CS_5AL-10 deletion line compared to CS. The chromosome location of a set of these genes was confirmed by PCR-based mapping on the D genome (or the 5AL-10 region). Many clusters were characterized by different level of expression in Creso, CS and CS_AL-10, suggesting that the different genome organization of the three genotypes may affect plant adaptation to stress. Clusters with similar expression trend were grouped and functional classified to mine the biological mean of their activation or repression. Genes involved in ABA, proline, glycine-betaine and sorbitol pathways were found up-regulated by drought stress. Furthermore, the enhanced expression of a set of transposons and retrotransposons was detected in CS_5AL-10. Conclusion Bread and durum wheat genotypes were characterized by a different physiological reaction to water stress and by a substantially different molecular response. The genome organization accounted for differences in the expression level of hundreds of genes located on the D genome or controlled by regulators located on the D genome. When a genomic stress (deletion of a chromosomal region) was combined with low water availability, a molecular response based on the activation of transposons and retrotransposons was observed.
机译:背景技术谷物灌浆过程中的水分胁迫对谷物产量有显着影响,导致胚乳细胞数量减少,从而降低了干物质积累的能力。面包小麦品种中国春(CS),中国春季末端缺失系(CS_5AL-10)和硬粒小麦品种Creso在籽粒灌浆期暴露于轻度和严重干旱胁迫后进行了转录分析,以寻找差异的证据。与不同小麦基因组区域相关的胁迫响应。结果Creso,CS及其缺失品系的转录组分析结果显示8,552个表达水平不同的非冗余探针集,这主要是由于这两个物种之间的比较。干旱处理修饰了3056个探针组的表达。除了在Creso和CS中显示出相似干旱响应的一组基因外,聚类分析还揭示了几种干旱响应特征,这些特征可能与Creso,CS和CS_5AL-10的不同基因组结构有关。与CS相比,一些干旱相关基因在Creso(缺少D基因组)或CS_5AL-10缺失系中的表达水平较低(或未表达)。通过在D基因组(或5AL-10区域)上进行基于PCR的定位,证实了这些基因的染色体位置。许多聚类的特征是在Creso,CS和CS_AL-10中表达水平不同,表明这三种基因型的基因组结构不同可能会影响植物对逆境的适应性。将具有相似表达趋势的簇进行分组并进行功能分类,以挖掘其激活或抑制的生物学平均值。发现与ABA,脯氨酸,甘氨酸-甜菜碱和山梨糖醇途径有关的基因被干旱胁迫上调。此外,在CS_5AL-10中检测到一组转座子和逆转座子的表达增强。结论面包和硬质小麦基因型的特征是对水分胁迫的生理反应不同,并且分子响应也有很大差异。基因组组织解释了位于D基因组上或由D基因组上的调控子控制的数百个基因表达水平的差异。当基因组应激(染色体区域的缺失)与低水利用率结合在一起时,观察到基于转座子和逆转座子活化的分子反应。

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