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A Computational Approach to Understand Arabidopsis thaliana and Soybean Resistance to Fusarium solani (Fsg)

机译:一种了解拟南芥和大豆对枯萎镰刀菌(Fsg)的抗性的计算方法。

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In this study, we reported the analysis of Arabidopsis thaliana microarray gene expression profile of root tissues after the plant was challenged with fungal pathogen Fusarium solani f. sp. glycines (Fsg). Our microarray analysis showed that the infection caused 130 transcript abundances (TAs) to increase by more than 2 fold and 32 out of 130 TAs were increased by more than 3 fold in the root tissues. However, only nineteen ESTs were observed with a decrease in TAs by more than 2 fold and 13 of them went down more than 3 fold due to the pathogen infection. In addition, the number of the up-regulated genes was nearly seven times more than that of down-regulated genes. The coordinate regulation of adjacent genes was detected and the distance distribution of the nearest neighbor genes was less likely to be randomly scattered in genome. The results of this study enabled us to decipher the resistance mechanism to Fsg through an integrated computational approach.
机译:在这项研究中,我们报告了植物受到真菌病原菌镰刀镰刀菌侵染后,拟南芥芯片基因表达谱分析的根组织。 sp。甘氨酸(Fsg)。我们的微阵列分析表明,感染导致130个转录本丰度(TAs)增加2倍以上,而130个TA中的32个在根部组织中增加了3倍以上。但是,仅观察到19个EST的TA减少了2倍以上,其中13例由于病原体感染而下降了3倍以上。此外,上调基因的数量几乎是下调基因的数量的七倍。检测到相邻基因的坐标调节,并且最接近的相邻基因的距离分布不太可能随机散布在基因组中。这项研究的结果使我们能够通过一种综合的计算方法来破译对Fsg的抵抗机制。

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