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Transcriptomic analysis of Arabidopsis thaliana plants treated with the Ky-9 and Ky-72 histone deacetylase inhibitors

机译:KY-9和KY-72组蛋白脱乙酰酶抑制剂治疗拟南芥植物的转录组分析

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摘要

Histone acetylation plays a pivotal role in plant growth and development, and is regulated by the antagonistic relationship between histone acetyltransferase (HAT) and histone deacetylase (HDAC). We previously revealed that some HDAC inhibitors confer high-salinity stress tolerance in plants. In this study, we identified two HDAC inhibitors, namely Ky-9 and Ky-72, which enhanced the high-salinity stress tolerance of Arabidopsis thaliana. Ky-9 and Ky-72 are structurally similar chlamydocin analogs. However, the in vitro inhibitory activity of Ky-9 against mammalian HDAC is greater than that of Ky-72. A western blot indicated that Ky-9 and Ky-72 increased the acetylation levels of histone H3, suggesting they exhibit HDAC inhibitory activities in plants. We conducted a transcriptomic analysis to investigate how Ky-9 and Ky-72 enhance high-salinity stress tolerance. Although Ky-9 upregulated the expression of more genes than Ky-72, similar gene expression patterns were induced by both HDAC inhibitors. Additionally, the expression of high-salinity stress tolerance-related genes, such as anthocyanin-related genes and a small peptide-encoding gene, increased by Ky-9 and Ky-72. These data suggest that slight structural differences in chemical side chain between HDAC inhibitors can alter inhibitory effect on HDAC protein leading to influence gene expression, thereby enhancing high-salinity stress tolerance in different extent.
机译:组蛋白乙酰化在植物生长和发育中起着枢轴作用,并且由组蛋白乙酰转移酶(帽子)和组蛋白脱乙酰化酶(HDAC)之间的拮抗关系调节。我们以前透露,一些HDAC抑制剂在植物中赋予高盐度胁迫耐受性。在这项研究中,我们确定了两种HDAC抑制剂,即KY-9和KY-72,其增强了拟南芥的高盐度应力耐受性。 KY-9和KY-72是结构相似的衣原体类似物。然而,对哺乳动物HDAC的KY-9的体外抑制活性大于KY-72。 Western印迹表明KY-9和KY-72增加了组蛋白H3的乙酰化水平,表明它们在植物中表现出HDAC抑制活性。我们进行了转录组分析,以研究KY-9和KY-72如何增强高盐度应力耐受性。虽然KY-9上调了比KY-72更多基因的表达,但HDAC抑制剂都诱导了类似的基因表达模式。另外,通过KY-9和KY-72增加了高盐度相关基因的高盐度胁迫耐受性相关基因,例如与花青素相关基因和小肽编码基因。这些数据表明,HDAC抑制剂之间的化学侧链的微小结构差异可以改变HDAC蛋白的抑制作用,导致影响基因表达,从而提高不同程度的高盐度应力耐受性。

著录项

  • 来源
    《Plant signaling & behavior》 |2018年第3期|共6页
  • 作者单位

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

    RIKEN Ctr Sustainable Resource Sci Chem Genom Res Grp 2-1 Hirosawa Wako Saitama Japan;

    RIKEN Ctr Sustainable Resource Sci Chem Genom Res Grp 2-1 Hirosawa Wako Saitama Japan;

    RIKEN Ctr Sustainable Resource Sci Chem Genom Res Grp 2-1 Hirosawa Wako Saitama Japan;

    RIKEN Plant Genom Network Res Team Ctr Sustainable Resource Sci Tsurumi Ku 1-7-22 Suehiro Cho Yokohama Kanagawa 2300045 Japan;

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

    Epigenetics; high-salinity stress; histone deacetylase inhibitor; histone acetylation; transcriptome;

    机译:表观遗传学;高盐度应力;组蛋白脱乙酰化酶抑制剂;组蛋白乙酰化;转录组;

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