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Brassinosteroid Regulates Cell Elongation by Modulating Gibberellin Metabolism in Rice

机译:油菜素类固醇通过调节水稻中的赤霉素代谢来调节细胞伸长

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Brassinosteroid (BR) and gibberellin (GA) are two predominant hormones regulating plant cell elongation. A defect in either of these leads to reduced plant growth and dwarfism. However, their relationship remains unknown in rice (Oryza sativa). Here, we demonstrated that BR regulates cell elongation by modulating GA metabolism in rice. Under physiological conditions, BR promotes GA accumulation by regulating the expression of GA metabolic genes to stimulate cell elongation. BR greatly induces the expression of D18/GA3ox-2, one of the GA biosynthetic genes, leading to increased GA(1) levels, the bioactive GA in rice seedlings. Consequently, both d18 and loss-of-function GA-signaling mutants have decreased BR sensitivity. When excessive active BR is applied, the hormone mostly induces GA inactivation through upregulation of the GA inactivation gene GA2ox-3 and also represses BR biosynthesis, resulting in decreased hormone levels and growth inhibition. As a feedback mechanism, GA extensively inhibits BR biosynthesis and the BR response. GA treatment decreases the enlarged leaf angles in plants with enhanced BR biosynthesis or signaling. Our results revealed a previously unknown mechanism underlying BR and GA crosstalk depending on tissues and hormone levels, which greatly advances our understanding of hormone actions in crop plants and appears much different from that in Arabidopsis thaliana.
机译:油菜素类固醇(BR)和赤霉素(GA)是调节植物细胞伸长的两种主要激素。这些中的任何一个缺陷都会导致植物生长减少和侏儒症。然而,它们的关系在水稻(Oryza sativa)中仍然未知。在这里,我们证明了BR通过调节水稻中的GA代谢来调节细胞伸长。在生理条件下,BR通过调节GA代谢基因的表达来刺激细胞伸长来促进GA积累。 BR极大地诱导了GA生物合成基因之一D18 / GA3ox-2的表达,导致水稻幼苗中具有生物活性的GA(1)水平升高。因此,d18和功能丧失的GA信号突变体均降低了BR敏感性。当使用过量的活性BR时,该激素主要通过上调GA失活基因GA2ox-3来诱导GA失活,并且还抑制BR的生物合成,导致激素水平降低和生长抑制。作为一种反馈机制,GA广泛抑制BR的生物合成和BR反应。 GA处理降低了具有增强的BR生物合成或信号传导作用的植物中扩大的叶片角。我们的结果揭示了取决于组织和激素水平的BR和GA串扰潜在的未知机制,这极大地增进了我们对农作物中激素作用的了解,并且与拟南芥中的激素机制有很大不同。

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