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首页> 外文期刊>Plant signaling & behavior >Genome-wide analysis of cytosine DNA methylation revealed salicylic acid promotes defense pathways over seedling development in pearl millet
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Genome-wide analysis of cytosine DNA methylation revealed salicylic acid promotes defense pathways over seedling development in pearl millet

机译:胞嘧啶DNA甲基化的全基因组分析显示出珠光珠促进水杨酸对幼苗发育的防御途径

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摘要

Cytosine DNA methylation is an epigenetic regulatory system used by plants to control gene expression. Methylation pattern always changes after abiotic stresses, pathogens and pest infections or after a treatment with salicylic acid (SA). The latter is a key player in plant development and defense against insect herbivores, pathogens, and abiotic stresses. The roles of SA on the methylation patterns and the plant development were performed in 4 pearl millet (Pennisetum glaucum) varieties. Seedlings of 4 early-flowering photosensitive genotypes (PMS3, PMI8, PMG, and PMT2) were grown on MS medium supplemented with null or different doses of SA. Root growth was used as a parameter to evaluate the effects of SA at early stage development. DNA from theseseedlings was extracted and Methylation-Sensitive Amplified Polymorphism (MSAP) was measured to assess the effects of SA on methylome. The methylation analysis revealed that SA treatment decreased the methylation, while inhibiting the root growth for all varieties tested, except in PMG at 0.5 mM, indicating a dose and a genotype response-dependence. The methylation level was positively correlated with the root growth. This suggests that SA influences both the methylome by demethylation activities and the root growth by interfering with the root development-responsive genes. The demethylation process, induced by the REPRESSOR OF SILCENCING 1 (ROS1) may activate R genes, or GH3.5 and downregulate the hormonal pathway under root development. These findings showed the pearl millet metabolism prioritized and promoted the defense pathways over vegetative development during stress.
机译:胞嘧啶DNA甲基化是植物用于控制基因表达的表观遗传调控系统。甲基化模式总是在非生物应激,病原体和害虫感染后或用水杨酸(SA)处理后变化。后者是植物开发和防御昆虫食草,病原体和非生物胁迫的关键球员。 SA对甲基化模式和植物开发的作用是在4个珍珠米(Pennisetum glaucum)品种中进行的。 4个早期开花的光敏基因型(PMS3,PMI8,PMG和PMT2)的幼苗在补充有零或不同剂量的SA补充的MS培养基上生长。根生长用作参数,以评估SA在早期发展的影响。提取来自该组合物的DNA,并测量甲基化敏感的扩增多态性(MSAP)以评估SA对甲基汞的影响。甲基化分析表明,SA治疗降低了甲基化,同时抑制所测试的所有品种的根生长,除PMG为0.5mm,表明剂量和基因型反应依赖性。甲基化水平与根生长呈正相关。这表明SA通过干扰根部显影响应基因来影响甲基杂物和根生长。由偏硅1(ROS1)诱导的去甲基化方法可以激活R基因,或GH3.5,并在根本发育下下调激素途径。这些发现表明,珍珠米特的代谢优先考虑并在压力期间促进了防御途径。

著录项

  • 来源
    《Plant signaling & behavior》 |2017年第9期|共7页
  • 作者单位

    Department of Biotechnology and Molecular Biology Pan African University Institute of basic Sciences Technology and Innovation Nairobi Kenya;

    CNRA and LNRPV Institut Senegalais de Recherches Agricoles (ISRA) Rte des hydrocarbures Dakar Senegal;

    Department of Biology South Eastern Kenya University Directorate of Research Innovation and Technology Kitui Kenya;

    Department of Horticulture Jomo Kenyatta University of Agriculture and Technology Nairobi Kenya;

    CNRA and LNRPV Institut Senegalais de Recherches Agricoles (ISRA) Rte des hydrocarbures Dakar Senegal;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物学;
  • 关键词

    Cytosine DNA methylation; demethylation; MSAP; pearl millet; root growth; salicylic acid;

    机译:胞嘧啶DNA甲基化;去甲基化;MSAP;珍珠小米;根生长;水杨酸;

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