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Proteome analysis of Physcomitrella patens exposed to progressive dehydration and rehydration

机译:进行性脱水和补液的Physcomitrella patens蛋白质组学分析

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Physcomitrella patens is an extremely dehydration-tolerant moss. However, the molecular basis of its responses to loss of cellular water remains unclear. A comprehensive proteomic analysis of dehydration- and rehydration-responsive proteins has been conducted using quantitative two-dimensional difference in-gel electrophoresis (2D-DIGE), and traditional 2-D gel electrophoresis (2-DE) combined with MALDI TOF/TOF MS. Of the 216 differentially-expressed protein spots, 112 and 104 were dehydration- and rehydration-responsive proteins, respectively. The functional categories of the most differentially-expressed proteins were seed maturation, defence, protein synthesis and quality control, and energy production. Strikingly, most of the late embryogenesis abundant (LEA) proteins were expressed at a basal level under control conditions and their synthesis was strongly enhanced by dehydration, a pattern that was confirmed by RT-PCR. Actinoporins, phosphatidylethanolamine-binding protein, arabinogalactan protein, and phospholipase are the likely dominant players in the defence system. In addition, 24 proteins of unknown function were identified as novel dehydration- or rehydration-responsive proteins. Our data indicate that Physcomitrella adopts a rapid protein response mechanism to cope with dehydration in its leafy-shoot and basal expression levels of desiccation-tolerant proteins are rapidly upgraded at high levels under stress. This mechanism appears similar to that seen in angiosperm seeds.
机译:Physcomitrella patens是一种极耐脱水的苔藓。但是,其对细胞水分流失的响应的分子基础仍然不清楚。使用定量的二维差异凝胶电泳(2D-DIGE)和传统的二维凝胶电泳(2-DE)结合MALDI TOF / TOF MS进行了对脱水和脱水反应蛋白的全面蛋白质组学分析。在216个差异表达的蛋白斑点中,分别有112个和104个是脱水响应蛋白和脱水响应蛋白。最差异表达的蛋白质的功能类别是种子成熟,防御,蛋白质合成和质量控制以及能量产生。引人注目的是,大多数晚期胚胎发生丰富(LEA)蛋白在对照条件下以基础水平表达,并且其合成通过脱水得到了强烈增强,这一模式已通过RT-PCR证实。放线菌素,磷脂酰乙醇胺结合蛋白,阿拉伯半乳聚糖蛋白和磷脂酶可能是防御系统中的主要角色。此外,有24种功能未知的蛋白被鉴定为新型的脱水或补水反应蛋白。我们的数据表明,Physcomitrella采取了一种快速的蛋白质反应机制来应对其多叶芽期间的脱水现象,并且在压力下高耐旱蛋白质的基础表达水平迅速提高。这种机制看起来与被子植物种子中的机制相似。

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