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磷酸化蛋白质组学分析揭示了Physcomitrella patens 中ABA 响应的磷酸化信号通路。

Phosphoproteomic profiling reveals ABA-responsive phosphosignaling pathways in Physcomitrella patens.

机构信息

Graduate School of Bio-Applications and Systems Engineering, Tokyo University of Agriculture and Technology, 2-24-16 Nakacho, Koganei, Tokyo, 184-8588, Japan.

Department of Bioscience, Tokyo University of Agriculture, 1-1-1 Sakuragaoka, Setagaya, Tokyo, 156-8502, Japan.

出版信息

Plant J. 2018 May;94(4):699-708. doi: 10.1111/tpj.13891. Epub 2018 Apr 23.

Abstract

Abscisic acid (ABA) and its signaling system are important for land plants to survive in terrestrial conditions. Here, we took a phosphoproteomic approach to elucidate the ABA signaling network in Physcomitrella patens, a model species of basal land plants. Our phosphoproteomic analysis detected 4630 phosphopeptides from wild-type P. patens and two ABA-responsive mutants, a disruptant of group-A type-2C protein phosphatase (PP2C; ppabi1a/b) and AR7, a defective mutant in ARK, identified as an upstream regulator of SnRK2. Quantitative analysis detected 143 ABA-responsive phosphopeptides in P. patens. The analysis indicated that SnRK2-mediated phosphorylation and target motifs were partially conserved in bryophytes. Our data demonstrate that the PpSnRK2B and AREB/ABF-type transcription factors are phosphorylated in vivo in response to ABA under the control of ARK. On the other hand, our data also revealed the following: (i) the entire ABA-responsive phosphoproteome in P. patens is quite diverse; (ii) P. patens PP2C affects additional pathways other than the known ABA signaling pathway; and (iii) ARK is mainly involved in ABA signaling. Taken together, we propose that the core ABA signaling pathway is essential in all land plants; however, some ABA-responsive phosphosignaling uniquely developed in bryophytes during the evolutionary process.

摘要

脱落酸(ABA)及其信号系统对于陆生植物在陆地条件下的生存至关重要。在这里,我们采用磷酸化蛋白质组学方法来阐明模式植物Physcomitrella patens 中的 ABA 信号网络。我们的磷酸化蛋白质组学分析从野生型 P. patens 和两个 ABA 响应突变体中检测到了 4630 个磷酸肽,这两个突变体分别是 A 组 2C 型蛋白磷酸酶(PP2C;ppabi1a/b)的缺失突变体和 AR7,后者是 SnRK2 的上游调节剂 ARK 的缺陷突变体。定量分析检测到了 P. patens 中 143 个 ABA 响应的磷酸肽。分析表明,在苔藓植物中 SnRK2 介导的磷酸化和靶标基序部分保守。我们的数据表明,在 ARK 的控制下,PpSnRK2B 和 AREB/ABF 型转录因子在 ABA 作用下在体内被磷酸化。另一方面,我们的数据还揭示了以下几点:(i)P. patens 中整个 ABA 响应的磷酸蛋白质组非常多样化;(ii)P. patens PP2C 除了已知的 ABA 信号通路外,还影响其他途径;(iii)ARK 主要参与 ABA 信号通路。总之,我们提出核心 ABA 信号通路在所有陆生植物中都是必不可少的;然而,在进化过程中,一些 ABA 响应的磷酸信号通路在苔藓植物中是独特发展的。

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