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SALT OVERLY SENSITIVE 2-CONSTITUTIVE TRIPLE RESPONSE1 模块协调拟南芥的生长和耐盐性。

The SALT OVERLY SENSITIVE 2-CONSTITUTIVE TRIPLE RESPONSE1 module coordinates plant growth and salt tolerance in Arabidopsis.

机构信息

State Key Laboratory of Plant Environmental Resilience, College of Biological Sciences, China Agricultural University, Beijing 100193, China.

Institute of Plant and Food Science, Department of Biology, Southern University of Science and Technology, Shenzhen 518055, China.

出版信息

J Exp Bot. 2024 Jan 1;75(1):391-404. doi: 10.1093/jxb/erad368.

Abstract

High salinity stress promotes plant ethylene biosynthesis and triggers the ethylene signalling response. However, the precise mechanism underlying how plants transduce ethylene signalling in response to salt stress remains largely unknown. In this study, we discovered that SALT OVERLY SENSITIVE 2 (SOS2) inhibits the kinase activity of CONSTITUTIVE TRIPLE RESPONSE1 (CTR1) by phosphorylating the 87th serine (S87). This phosphorylation event activates the ethylene signalling response, leading to enhanced plant salt resistance. Furthermore, through genetic analysis, we determined that the loss of CTR1 or the gain of SOS2-mediated CTR1 phosphorylation both contribute to improved plant salt tolerance. Additionally, in the sos2 mutant, we observed compromised proteolytic processing of ETHYLENE INSENSITIVE 2 (EIN2) and reduced nuclear localization of EIN2 C-terminal fragments (EIN2-C), which correlate with decreased accumulation of ETHYLENE INSENSITIVE 3 (EIN3). Collectively, our findings unveil the role of the SOS2-CTR1 regulatory module in promoting the activation of the ethylene signalling pathway and enhancing plant salt tolerance.

摘要

高盐胁迫促进植物乙烯生物合成并引发乙烯信号响应。然而,植物如何响应盐胁迫转导乙烯信号的确切机制在很大程度上仍然未知。在这项研究中,我们发现 SALT OVERLY SENSITIVE 2(SOS2)通过磷酸化第 87 位丝氨酸(S87)抑制 CONSTITUTIVE TRIPLE RESPONSE1(CTR1)的激酶活性。这种磷酸化事件激活了乙烯信号响应,导致植物耐盐性增强。此外,通过遗传分析,我们确定 CTR1 的缺失或 SOS2 介导的 CTR1 磷酸化的获得都有助于提高植物的耐盐性。此外,在 sos2 突变体中,我们观察到 ETHYLENE INSENSITIVE 2(EIN2)的蛋白水解加工受损,以及 EIN2 C 末端片段(EIN2-C)的核定位减少,这与 ETHYLENE INSENSITIVE 3(EIN3)的积累减少相关。总之,我们的研究结果揭示了 SOS2-CTR1 调节模块在促进乙烯信号通路的激活和增强植物耐盐性方面的作用。

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