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Quantitative iTRAQ-based proteomic analysis of phosphoproteins and ABA-regulatedphosphoproteins in maize leaves under osmotic stress

机译:基于磷酸化iTRAQ的蛋白质组蛋白定量分析和ABA调节渗透胁迫下玉米叶片中的磷酸化蛋白

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摘要

Abscisic acid (ABA) regulates various developmental processes and stress responses in plants. Protein phosphorylation/dephosphorylation is a central post-translational modification (PTM) in ABA signaling. However, the phosphoproteins regulated by ABA under osmotic stress remain unknown in maize. In this study, maize mutant vp5 (deficient in ABA biosynthesis) and wild-type Vp5 were used to identify leaf phosphoproteins regulated by ABA under osmotic stress. Up to 4052 phosphopeptides, corresponding to 3017 phosphoproteins, were identified by Multiplex run iTRAQ-based quantitative proteomic and LC-MS/MS methods. The 4052 phosphopeptides contained 5723 non-redundant phosphosites; 512 phosphopeptides (379 in Vp5, 133 in vp5) displayed at least a 1.5-fold change of phosphorylation level under osmotic stress, of which 40 shared common in both genotypes and were differentially regulated by ABA. Comparing the signaling pathways involved in vp5 response to osmotic stress and those that in Vp5, indicated that ABA played a vital role in regulating these pathways related to mRNA synthesis, protein synthesis and photosynthesis. Our results provide a comprehensive dataset of phosphopeptides and phosphorylation sites regulated by ABA in maize adaptation to osmotic stress. This will be helpful to elucidate the ABA-mediate mechanism of maize endurance to drought by triggering phosphorylation or dephosphorylation cascades.
机译:脱落酸(ABA)调节植物的各种发育过程和胁迫反应。蛋白质磷酸化/去磷酸化是ABA信号转导中的核心翻译后修饰(PTM)。然而,在渗透胁迫下由ABA调节的磷蛋白在玉米中仍然未知。在这项研究中,玉米突变体vp5(缺乏ABA的生物合成)和野生型Vp5用于鉴定在渗透胁迫下ABA调控的叶片磷蛋白。通过多重运行基于iTRAQ的定量蛋白质组学和LC-MS / MS方法,鉴定出多达3052个磷蛋白的多达4052个磷肽。 4052个磷酸肽含有5723个非冗余磷酸位; 512个磷酸肽(Vp5中为379个,vp5中为133个)在渗透胁迫下的磷酸化水平至少变化了1.5倍,其中40个在两种基因型中共有,并且受ABA差异调节。比较vp5对渗透胁迫的应答信号通路和Vp5应答的信号通路,表明ABA在调节这些与mRNA合成,蛋白质合成和光合作用有关的通路中起着至关重要的作用。我们的结果提供了由ABA调控的玉米适应渗透胁迫的磷酸肽和磷酸化位点的综合数据集。通过触发磷酸化或去磷酸化级联,这将有助于阐明ABA介导的玉米抗旱机制。

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