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Proteomic and phosphoproteomic analysis of polyethylene glycol-induced osmotic stress in root tips of common bean (Phaseolus vulgaris L.)

机译:聚乙二醇引起的菜豆根尖渗透压的蛋白质组学和磷酸化蛋白质组学分析

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摘要

Previous studies have shown that polyethylene glycol (PEG)-induced osmotic stress (OS) reduces cell-wall (CW) porosity and limits aluminium (Al) uptake by root tips of common bean (Phaseolus vulgaris L.). A subsequent transcriptomic study suggested that genes related to CW processes are involved in adjustment to OS. In this study, a proteomic and phosphoproteomic approach was applied to identify OS-induced protein regulation to further improve our understanding of how OS affects Al accumulation. Analysis of total soluble proteins in root tips indicated that, in total, 22 proteins were differentially regulated by OS; these proteins were functionally categorized. Seventy-seven per- cent of the total expressed proteins were involved in metabolic pathways, particularly of carbohydrate and amino acid metabolism. An analysis of the apoplastic proteome revealed that OS reduced the level of five proteins and increased that of seven proteins. Investigation of the total soluble phosphoproteome suggested that dehydrin responded to OS with an enhanced phosphorylation state without a change in abundance. A cellular immunolocalization analysis indicated that dehydrin was localized mainly in the CW. This suggests that dehydrin may play a major protective role in the OS-induced physical breakdown of the CW structure and thus maintenance of the reversibility of CW extensibility during recovery from OS. The proteomic and phosphoproteomic analyses provided novel insights into the complex mechanisms of OS-induced reduction of Al accumulation in the root tips of common bean and highlight a key role for modification of CW structure.
机译:先前的研究表明,聚乙二醇(PEG)引起的渗透压(OS)降低了普通豆(菜豆)根尖对细胞壁(CW)的孔隙率并限制了铝(Al)的吸收。随后的转录组研究表明,与CW过程相关的基因参与了OS的调节。在这项研究中,蛋白质组学和磷酸化蛋白质组学方法被用于鉴定OS诱导的蛋白质调控,以进一步增进我们对OS如何影响Al积累的理解。根尖中总可溶性蛋白的分析表明,总共有22种蛋白受到OS的差异调节。这些蛋白质按功能分类。总表达蛋白中有77%参与了代谢途径,特别是碳水化合物和氨基酸代谢。对质外体蛋白质组的分析表明,OS降低了五种蛋白质的水平,而增加了七种蛋白质的水平。对总可溶性磷酸化蛋白质组的研究表明,脱水蛋白对OS的反应具有增强的磷酸化状态,而丰度没有变化。细胞免疫定位分析表明脱水蛋白主要定位在连续波中。这表明脱水蛋白可能在OS诱导的CW结构物理破坏中起主要保护作用,从而在从OS恢复过程中维持CW可扩展性的可逆性。蛋白质组学和磷酸化蛋白质组学分析为OS诱导减少普通豆根尖中Al积累的复杂机制提供了新颖的见解,并突出了改变CW结构的关键作用。

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