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Use of MSAP Markers to Analyse the Effects of Salt Stress on DNA Methylation in Rapeseed (Brassica napus var. oleifera)

机译:使用MSAP标记分析盐胁迫对油菜(Brassica napus var.oleifera)DNA甲基化的影响

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摘要

Excessive soil salinity is a major ecological and agronomical problem, the adverse effects of which are becoming a serious issue in regions where saline water is used for irrigation. Plants can employ regulatory strategies, such as DNA methylation, to enable relatively rapid adaptation to new conditions. In this regard, cytosine methylation might play an integral role in the regulation of gene expression at both the transcriptional and post-transcriptional levels. Rapeseed, which is the most important oilseed crop in Europe, is classified as being tolerant of salinity, although cultivars can vary substantially in their levels of tolerance. In this study, the Methylation Sensitive Amplified Polymorphism (MSAP) approach was used to assess the extent of cytosine methylation under salinity stress in salinity-tolerant (Exagone) and salinity-sensitive (Toccata) rapeseed cultivars. Our data show that salinity affected the level of DNA methylation. In particular methylation decreased in Exagone and increased in Toccata. Nineteen DNA fragments showing polymorphisms related to differences in methylation were sequenced. In particular, two of these were highly similar to genes involved in stress responses (Lacerata and trehalose-6-phosphatase synthase S4) and were chosen to further characterization. Bisulfite sequencing and quantitative RT-PCR analysis of selected MSAP loci showed that cytosine methylation changes under salinity as well as gene expression varied. In particular, our data show that salinity stress influences the expression of the two stress-related genes. Moreover, we quantified the level of trehalose in Exagone shoots and found that it was correlated to TPS4 expression and, therefore, to DNA methylation. In conclusion, we found that salinity could induce genome-wide changes in DNA methylation status, and that these changes, when averaged across different genotypes and developmental stages, accounted for 16.8% of the total site-specific methylation differences in the rapeseed genome, as detected by MSAP analysis.
机译:土壤盐分过高是一个主要的生态和农业问题,在使用盐水灌溉的地区,其不利影响正成为一个严重的问题。植物可以采用调节策略,例如DNA甲基化,以相对快速地适应新条件。在这方面,胞嘧啶甲基化可能在转录和转录后水平上都在基因表达的调节中起不可或缺的作用。油菜籽是欧洲最重要的油料作物,尽管其耐性水平可能有很大差异,但被归为耐盐碱的。在这项研究中,甲基化敏感性扩增多态性(MSAP)方法用于评估耐盐(Exagone)和盐敏感(Toccata)油菜品种在盐胁迫下胞嘧啶甲基化的程度。我们的数据表明盐度影响DNA甲基化的水平。特别是甲基化在Exagone中降低,在Toccata中提高。测序19个DNA片段,显示与甲基化差异相关的多态性。特别是,其中两个与应激反应中涉及的基因高度相似(Lacerata和海藻糖6磷酸酶合酶S4),并被选择进行进一步表征。亚硫酸氢盐测序和选定的MSAP基因座的定量RT-PCR分析表明,盐度下的胞嘧啶甲基化变化以及基因表达均发生变化。特别地,我们的数据表明盐度胁迫影响两个胁迫相关基因的表达。此外,我们量化了Exagone芽中的海藻糖水平,发现它与TPS4表达相关,因此与DNA甲基化相关。总之,我们发现盐度可以诱导全基因组DNA甲基化状态的变化,这些变化在不同基因型和发育阶段进行平均时,占油菜基因组总位点特异性甲基化差异的16.8%,通过MSAP分析检测到。

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