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盐胁迫和渗透胁迫下小麦幼苗叶片的生理与叶绿体蛋白质组整合分析。

Integrated physiological and chloroplast proteome analysis of wheat seedling leaves under salt and osmotic stresses.

机构信息

College of Life Science, Capital Normal University, Beijing, 100048, China.

College of Life Science, Capital Normal University, Beijing, 100048, China.

出版信息

J Proteomics. 2021 Mar 15;234:104097. doi: 10.1016/j.jprot.2020.104097. Epub 2021 Jan 2.

Abstract

In this study, we performed an integrated physiological and chloroplast proteome analysis of wheat seedling leaves under salt and osmotic stresses by label-free based quantitative proteomic approach. Both salt and osmotic stresses significantly increased the levels of abscisic acid and methyl jasmonate and led to damages of chloroplast ultrastructure. Main parameters of chlorophyll fluorescence and gas exchange showed a significant decline under both stresses. Quantitative proteomic analysis identified 194 and 169 chloroplast-localized differentially accumulated proteins (DAPs) responsive to salt and osmotic stresses, respectively. The abundance of main DAPs involved in light-dependent reaction were increased under salt stress, but decreased in response to osmotic stress. On the contrary, salt stress induced a significant upregulation of the DAPs associated with Calvin cycle, transcription and translation, amino acid metabolism, carbon and nitrogen metabolism, and some of them exhibited a downregulation under osmotic stress. In particular, both treatments significantly upregulated the DAPs involved in plastoglobule development, protein folding and proteolysis, hormone and vitamin synthesis. Finally, we proposed a putative synergistic responsive network of wheat chloroplast proteome under salt and osmotic stresses, aiming to provide new insights into the underlying response and defense mechanisms of wheat chloroplast proteome in response to abiotic stresses. SIGNIFICANCE: Salt and osmotic stresses are the two most common abiotic stresses that severely affect crop growth and productivity. As the main site of photosynthesis of plant cells, the chloroplast also plays important role in plant tolerance to abiotic stress. However, the response of chloroplast proteome to salt and osmotic is still poorly understood by using the traditional two-dimensional electrophoresis (2-DE) method due to a poor resolution of chloroplast protein separation and low throughput identification of differentially accumulated proteins (DAPs). In this study, we employed label-free based quantitative proteomic approach to perform an integrated physiological and large-scale chloroplast proteome analysis of wheat seedling leaves under salt and osmotic stresses, which laid a solid foundation for future studies into the response and defense mechanisms of wheat chloroplast in response to abiotic stresses.

摘要

在这项研究中,我们采用基于无标记的定量蛋白质组学方法,对盐胁迫和渗透胁迫下小麦幼苗叶片进行了综合生理和叶绿体蛋白质组分析。盐胁迫和渗透胁迫均显著增加了脱落酸和茉莉酸甲酯的水平,并导致叶绿体超微结构受损。在这两种胁迫下,叶绿素荧光和气体交换的主要参数均显著下降。定量蛋白质组学分析分别鉴定出 194 个和 169 个对盐胁迫和渗透胁迫响应的叶绿体定位差异积累蛋白(DAP)。在盐胁迫下,与光依赖性反应相关的主要 DAP 的丰度增加,但在渗透胁迫下则减少。相反,盐胁迫诱导与卡尔文循环、转录和翻译、氨基酸代谢、碳氮代谢相关的 DAP 显著上调,其中一些在渗透胁迫下下调。特别是,两种处理均显著上调与质体小球体发育、蛋白折叠和蛋白水解、激素和维生素合成相关的 DAP。最后,我们提出了一个在盐胁迫和渗透胁迫下小麦叶绿体蛋白质组的协同响应网络,旨在为植物叶绿体蛋白质组在应对非生物胁迫时的潜在响应和防御机制提供新的见解。 意义:盐胁迫和渗透胁迫是两种最常见的非生物胁迫,严重影响作物的生长和产量。作为植物细胞光合作用的主要场所,叶绿体在植物耐受非生物胁迫方面也起着重要作用。然而,由于叶绿体蛋白分离分辨率差和差异积累蛋白(DAP)鉴定通量低,传统的二维电泳(2-DE)方法对叶绿体蛋白质组对盐胁迫和渗透胁迫的响应仍知之甚少。在这项研究中,我们采用基于无标记的定量蛋白质组学方法,对盐胁迫和渗透胁迫下小麦幼苗叶片进行了综合生理和大规模叶绿体蛋白质组分析,为今后研究小麦叶绿体对非生物胁迫的响应和防御机制奠定了坚实的基础。

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