首页> 外文期刊>Plant physiology >MAOHUZI6/ETHYLENE INSENSITIVE3-LIKE1 and ETHYLENE INSENSITIVE3-LIKE2 Regulate Ethylene Response of Roots and Coleoptiles and Negatively Affect Salt Tolerance in Rice
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MAOHUZI6/ETHYLENE INSENSITIVE3-LIKE1 and ETHYLENE INSENSITIVE3-LIKE2 Regulate Ethylene Response of Roots and Coleoptiles and Negatively Affect Salt Tolerance in Rice

机译:毛胡子6 /乙烯敏感3-Like1和乙烯敏感3-LIKE2调节乙烯对根和胚芽鞘的响应,并对水稻的耐盐性产生负面影响

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Ethylene plays important roles in plant growth, development, and stress responses. The ethylene signaling pathway has been studied extensively, mainly in Arabidopsis (Arabidopsis thaliana). However, the molecular mechanism of ethylene signaling is largely unknown in rice (Oryza sativa). Previously, we have isolated a set of rice ethylene-response mutants. Here, we characterized the mutant maohuzi6 (mhz6). Through map-based cloning, we found that MHZ6 encodes ETHYLENE INSENSITIVE3-LIKE1 (OsEIL1), a rice homolog of ETHYLENE INSENSITIVE3 (EIN3), which is the master transcriptional regulator of ethylene signaling in Arabidopsis. Disruption of MHZ6/OsEIL1 caused ethylene insensitivity mainly in roots, whereas silencing of the closely related OsEIL2 led to ethylene insensitivity mainly in coleoptiles of etiolated seedlings. This organ-specific functional divergence is different from the functional features of EIN3 and EIL1, both of which mediate the incomplete ethylene responses of Arabidopsis etiolated seedlings. In Arabidopsis, EIN3 and EIL1 play positive roles in plant salt tolerance. In rice, however, lack of MHZ6/OsEIL1 or OsEIL2 functions improves salt tolerance, whereas the overexpressing lines exhibit salt hypersensitivity at the seedling stage, indicating that MHZ6/OsEIL1 and OsEIL2 negatively regulate salt tolerance in rice. Furthermore, this negative regulation by MHZ6/OsEIL1 and OsEIL2 in salt tolerance is likely attributable in part to the direct regulation of HIGH-AFFINITY K+ TRANSPORTER2; 1 expression and Na+ uptake in roots. Additionally, MHZ6/OsEIL1 overexpression promotes grain size and thousand-grain weight. Together, our study provides insights for the functional diversification of MHZ6/OsEIL1 and OsEIL2 in ethylene response and finds a novel mode of ethylene-regulated salt stress response that could be helpful for engineering salt-tolerant crops.
机译:乙烯在植物生长,发育和胁迫响应中起重要作用。乙烯信号传导途径已被广泛研究,主要在拟南芥(Arabidopsis thaliana)中。然而,水稻中的乙烯信号传导的分子机制在很大程度上是未知的。以前,我们已经分离出了一套水稻乙烯响应突变体。在这里,我们表征了突变体maohuzi6(mhz6)。通过基于图的克隆,我们发现MHZ6编码ETHINSENE INSENSITIVE3(EIN3)的水稻同源物ETHINSENE INSENSITIVE3-LIKE1(OsEIL1),这是拟南芥中乙烯信号的主要转录调节因子。 MHZ6 / OsEIL1的破坏主要在根部引起乙烯不敏感,而密切相关的OsEIL2沉默则主要在黄化幼苗的胚芽鞘中引起乙烯不敏感。这种器官特异性功能差异不同于EIN3和EIL1的功能特征,两者都介导拟南芥黄化幼苗的乙烯反应不完全。在拟南芥中,EIN3和EIL1在植物耐盐性中发挥积极作用。然而,在水稻中,缺少MHZ6 / OsEIL1或OsEIL2的功能会提高耐盐性,而过表达品系在苗期会表现出盐超敏性,表明MHZ6 / OsEIL1和OsEIL2负调节水稻的耐盐性。此外,MHZ6 / OsEIL1和OsEIL2在耐盐性方面的这种负调控可能部分归因于HIGH-AFFINITY K + TRANSPORTER2的直接调控。根中有1种表达和Na +吸收。此外,MHZ6 / OsEIL1的过表达促进了晶粒尺寸和千粒重。总之,我们的研究为MHZ6 / OsEIL1和OsEIL2在乙烯响应中的功能多样化提供了见识,并发现了一种乙烯调节盐胁迫响应的新模式,该模式可能有助于工程耐盐作物。

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