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Dehydration-responsive Nuclear Proteome of Rice (Oryza sativa L.) Illustrates Protein Network Novel Regulators of Cellular Adaptation and Evolutionary Perspective

机译:水稻(Oryza sativa L.)的脱水响应性核蛋白质组阐明了蛋白质网络细胞适应的新型调节剂和进化前景

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摘要

Water deficit or dehydration is the most crucial environmental constraint on plant growth and development and crop productivity. It has been postulated that plants respond and adapt to dehydration by altering their cellular metabolism and by activating various defense machineries. The nucleus, the regulatory hub of the eukaryotic cell, is a dynamic system and a repository of various macromolecules that serve as modulators of cell signaling dictating the cell fate decision. To better understand the molecular mechanisms of dehydration-responsive adaptation in plants, we developed a comprehensive nuclear proteome of rice. The proteome was determined using a sequential method of organellar enrichment followed by two-dimensional electrophoresis-based protein identification by LC-ESI-MS/MS. We initially screened several commercial rice varieties and parental lines and established their relative dehydration tolerance. The differential display of nuclear proteins in the tolerant variety under study revealed 150 spots that showed changes in their intensities by more than 2.5-fold. The proteomics analysis led to the identification of 109 differentially regulated proteins presumably involved in a variety of functions, including transcriptional regulation and chromatin remodeling, signaling and gene regulation, cell defense and rescue, and protein degradation. The dehydration-responsive nuclear proteome revealed a coordinated response involving both regulatory and functional proteins, impinging upon the molecular mechanism of dehydration adaptation. Furthermore a comparison between the dehydration-responsive nuclear proteome of rice and that of a legume, the chickpea, showed an evolutionary divergence in dehydration response comprising a few conserved proteins, whereas most of the proteins may be involved in crop-specific adaptation. These results might help in understanding the spectrum of nuclear proteins and the biological processes they control under dehydration as well as having implications for strategies to improve dehydration tolerance in plants.
机译:缺水或脱水是对植物生长发育和作物生产力的最关键的环境限制。据推测,植物通过改变细胞的新陈代谢和激活各种防御机制来应对并适应脱水。核是真核细胞的调节中心,是一个动态系统,是各种大分子的储存库,它们充当细胞信号调节器,决定着细胞命运的决定因素。为了更好地了解植物中脱水反应适应的分子机制,我们开发了水稻的全面核蛋白质组。使用序贯的细胞器富集方法,然后通过LC-ESI-MS / MS进行基于二维电泳的蛋白质鉴定,确定蛋白质组。我们最初筛选了几种商品水稻品种和亲本,并确定了它们的相对脱水耐性。在所研究的耐性品种中,核蛋白的差异显示揭示了150个斑点,这些斑点的强度变化超过2.5倍。蛋白质组学分析导致​​鉴定了109种差异调节蛋白,这些蛋白可能涉及多种功能,包括转录调节和染色质重塑,信号传导和基因调节,细胞防御和抢救以及蛋白质降解。脱水反应的核蛋白质组揭示了协调反应,涉及调节蛋白和功能蛋白,影响了脱水适应的分子机制。此外,水稻和豆科植物鹰嘴豆的脱水反应性核蛋白质组之间的比较显示,脱水反应的进化差异包括少数保守的蛋白质,而大多数蛋白质可能与作物特异性适应有关。这些结果可能有助于了解核蛋白的谱图及其在脱水条件下控制的生物过程,并有助于提高植物对脱水的耐受性。

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