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PNAS Plus: Quantitative and functional posttranslational modification proteomics reveals that TREPH1 plays a role in plant touch-delayed bolting

机译:PNAS Plus:定量和功能性翻译后修饰蛋白质组学揭示了TREPH1在植物接触延迟的锚固中起作用

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摘要

Environmental mechanical forces, such as wind and touch, trigger gene-expression regulation and developmental changes, called “thigmomorphogenesis,” in plants, demonstrating the ability of plants to perceive such stimuli. In Arabidopsis, a major thigmomorphogenetic response is delayed bolting, i.e., emergence of the flowering stem. The signaling components responsible for mechanotransduction of the touch response are largely unknown. Here, we performed a high-throughput SILIA (stable isotope labeling in Arabidopsis)-based quantitative phosphoproteomics analysis to profile changes in protein phosphorylation resulting from 40 seconds of force stimulation in Arabidopsis thaliana. Of the 24 touch-responsive phosphopeptides identified, many were derived from kinases, phosphatases, cytoskeleton proteins, membrane proteins, and ion transporters. In addition, the previously uncharacterized protein TOUCH-REGULATED PHOSPHOPROTEIN1 (TREPH1) became rapidly phosphorylated in touch-stimulated plants, as confirmed by immunoblots. TREPH1 fractionates as a soluble protein and is shown to be required for the touch-induced delay of bolting and gene-expression changes. Furthermore, a nonphosphorylatable site-specific isoform of TREPH1 (S625A) failed to restore touch-induced flowering delay of treph1-1, indicating the necessity of S625 for TREPH1 function and providing evidence consistent with the possible functional relevance of the touch-regulated TREPH1 phosphorylation. Taken together, these findings identify a phosphoprotein player in Arabidopsis thigmomorphogenesis regulation and provide evidence that TREPH1 and its touch-induced phosphorylation may play a role in touch-induced bolting delay, a major component of thigmomorphogenesis.
机译:环境机械力(例如风和风)会触发植物中的基因表达调控和发育变化,称为“拟形态发生”,这证明了植物感知这种刺激的能力。在拟南芥中,主要的拟态发生反应是延迟抽ing,即开花茎的出现。负责触摸响应的机械传导的信号成分在很大程度上是未知的。在这里,我们进行了基于高通量SILIA(拟南芥中的稳定同位素标记)的定量磷酸化蛋白质组学分析,以分析由拟南芥40秒的力刺激导致的蛋白质磷酸化变化。在鉴定出的24种触摸反应性磷酸肽中,许多来源于激酶,磷酸酶,细胞骨架蛋白,膜蛋白和离子转运蛋白。此外,免疫印迹证实,以前未鉴定的蛋白质触摸调节的磷酸蛋白1(TREPH1)在接触刺激的植物中迅速磷酸化。 TREPH1作为可溶蛋白进行分馏,并且显示出因触摸而引起的抽and和基因表达变化的延迟是必需的。此外,TREPH1(S625A)的非磷酸化位点特异性同工型未能恢复触摸诱导的treph1-1开花延迟,表明S625具有TREPH1功能的必要性,并提供了与触摸调节的TREPH1磷酸化可能的功能相关的证据。综上所述,这些发现确定了拟南芥拟态形成调控中的磷蛋白参与者,并提供了证据表明TREPH1及其触摸诱导的磷酸化可能在触摸诱导的螺栓延迟中发挥作用,螺栓延迟是拟态形成的主要组成部分。

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