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The Flowering Repressor SVP Confers Drought Resistance in Arabidopsis by Regulating Abscisic Acid Catabolism

机译:开花抑制因子SVP通过调节脱落酸代谢来赋予拟南芥抗旱性。

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摘要

Terrestrial plants must cope with drought stress to survive.Under drought stress,plants accumulate the phytohormone abscisic acid (ABA) by increasing its biosynthesis and decreasing its catabolism.However,the regulatory pathways controlling ABA catabolism in response to drought remain largely unclear.Here,we report that the flowering repressor SHORT VEGETATIVE PHASE (SVP) is induced by drought stress and associates with the promoter regions of the ABA catabolism pathway genes CYP707A1,CYP707A3 and AtBG1,causing decreased expression of CYP707A1 and CYP707A3 but enhanced expression ofAtBG1 inArabidopsis leaves.Loss-of-function mutations in CYP707A1 and CYP707A3 or overexpression of AtBG1 could rescue the drought-hypersensitive phenotype ofsvp mutant plants by increasing cellular ABA levels.Collectively,our results suggest that SVP is a central regulator of ABA catabolism and that a regulatory pathway involving SVP,CYP707A1/3,and AtBG1 plays a critical role in plant response to water deficit and plant drought resistance.
机译:陆生植物必须应付干旱胁迫才能生存。在干旱胁迫下,植物会通过增加其生物合成和减少其分解代谢而积累植物激素脱落酸(ABA)。但是,目前仍然不清楚控制干旱对ABA分解代谢的调控途径。我们报告说开花抑制物短生植物相(SVP)是由干旱胁迫诱导的,并且与ABA分解代谢途径基因CYP707A1,CYP707A3和AtBG1的启动子区域相关,导致CYP707A1和CYP707A3的表达降低,但AtBG1在拟南芥叶片中的表达增强。 CYP707A1和CYP707A3的功能突变或AtBG1的过量表达可以通过增加细胞ABA的水平来挽救svp突变型植物的干旱超敏表型。总的来说,我们的结果表明SVP是ABA分解代谢的中央调节剂,并且涉及SVP的调节途径,CYP707A1 / 3和AtBG1在植物对水分缺乏的反应中起关键作用cit和植物抗旱性。

著录项

  • 来源
    《分子植物(英文版)》 |2018年第9期|1184-1197|共14页
  • 作者单位

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    University of Chinese Academy of Sciences(CAS), Shanghai 200032, P.R.China;

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    University of Chinese Academy of Sciences(CAS), Shanghai 200032, P.R.China;

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    University of Chinese Academy of Sciences(CAS), Shanghai 200032, P.R.China;

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    University of Chinese Academy of Sciences(CAS), Shanghai 200032, P.R.China;

    Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, TX 79409, USA;

    Shanghai Center for Plant Stress Biology and Center for Excellence in Molecular Plant Sciences, Chinese Academy of Sciences, Shanghai 200032, P.R.China;

    Department of Horticulture and Landscape Architecture, Purdue University, West Lafayette, IN 47907, USA;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-19 04:27:25
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