首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >Gibberellins modulate local auxin biosynthesis and polar auxin transport by negatively affecting flavonoid biosynthesis in the root tips of rice
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Gibberellins modulate local auxin biosynthesis and polar auxin transport by negatively affecting flavonoid biosynthesis in the root tips of rice

机译:赤霉素通过在水稻根尖中产生负面影响黄酮类生物合成来调节局部养羊酸的生物合成和极性养蛋白传输

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摘要

As critical signalling molecules, both gibberellin (GA) and auxin play essential roles in regulating root elongation, and many studies have been shown that auxin influences GA biosynthesis and signalling. However, the mechanism by which GA affects auxin in root elongation is still unknown. In this study, root elongation and DR5GUS activity were analyzed in rice seedlings. Paclobutrazol-induced short root phenotypes could be partially reversed by co-treatment with IAA, and the inhibition of root elongation caused by naphthylphthalamic acid could be partially reversed when plants were co-treated with GA. DR5-GUS activity was increased in the presence of GA and was reduced at the root tip of paclobutrazol-treated seedlings, indicating that GA could regulate local auxin biosynthesis and polar auxin transport (PAT) in rice root tips. Our RNA-seq analysis showed that GA was involved in the regulation of flavonoid biosynthesis. Flavonoid accumulation level in ks1 root tips was significantly increased and negatively correlated with GA content in GA- and PAC-treated seedlings. GA also rescued the decreased DR5-GUS activity induced by quercetin in rice root tips, confirming that flavonoids act as an intermediary in GA-mediated auxin biosynthesis and PAT. Based on RNA-seq and qPCR analyses, we determined that GA regulates local auxin biosynthesis and polar auxin transport by modulating the expression of OsYUCCA6 and PIN. Our findings provide valuable new insights into the interactions between GA and auxin in the root tips of rice.
机译:作为关键信号传导分子,嗜酸甘油蛋白(GA)和生长素在调节根伸长率方面发挥基本作用,并且已经表明了许多研究,即蟾蜍素影响GA生物合成和信号传导。然而,Ga在根伸长率中影响生长素的机制仍然未知。在该研究中,在水稻幼苗中分析了根伸长率和DR5GUS活性。紫杉蛋黄诱导的短根表型可以通过与IAA共同处理部分反转,并且当植物与GA共同处理时,由萘氨基甲苯二甲酸萘磺酸引起的根伸长率的抑制可以部分地逆转。在Ga存在下,DR5-GUS活性增加,并且在紫杉蛋黄处理的幼苗的根尖处减少,表明GA可以调节稻尖端局部局部肿瘤中的局部生长素生物合成和极性养蛋白转运(PAT)。我们的RNA-SEQ分析表明,GA参与了类黄酮化生物合成的调节。 KS1根尖端中的黄酮蓄积水平显着增加,与GA和PAC处理的幼苗中的GA含量呈负相关。 GA还拯救了槲皮素在水稻根提示中诱导的DR5-GUS活性减少,证实黄酮类化合物作为GA介导的疾病生物合成中的中间体和PAT。基于RNA-SEQ和QPCR分析,我们确定GA通过调节Osyucca6和销的表达来调节局部疾病生物合成和极性养蛋白传输。我们的调查结果为Ga和植物中的稻草尖端之间的相互作用提供了有价值的新见解。

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  • 作者单位

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Jingchu Univ Technol Coll Bioengn Jingmen 448000 Peoples R China;

    Hainan Univ Coll Trop Crops Hainan Key Lab Sustainable Utilizat Trop Bioresou Haikou 572208 Hainan Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

    Xinyang Normal Univ Coll Life Sci Xinyang 464000 Peoples R China;

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

    Gibberellin; Auxin; Flavonoids; Root tip; Rice;

    机译:赤霉素;生长素;黄酮类化合物;根尖;米饭;

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