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Root proteomic and metabolic analyses reveal specific responses to drought stress in differently tolerant grapevine rootstocks

机译:根蛋白质组学和代谢分析揭示了对不同耐受性葡萄砧木的干旱胁迫的特定反应

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Roots play a central role in plant response to water stress (WS). They are involved in its perception and signalling to the leaf as well as in allowing the plant to adapt to maintaining an adequate water balance. Only a few studies have investigated the molecular/biochemical responses to WS in roots of perennial plants, such as grapevine. This study compares two grapevine rootstock genotypes (i.e. 101.14 and M4) with different tolerance to WS, evaluating the responses at proteomic and metabolite levels. WS induced changes in the abundance of several proteins in both genotypes (17 and 22% of the detected proteins in 101.14 and M4, respectively). The proteomic analysis revealed changes in many metabolic pathways that fitted well with the metabolite data. M4 showed metabolic responses which were potentially able to counteract the WS effects, such as the drop in cell turgor, increased oxidative stress and loss of cell structure integrity/functionality. However, in 101.14 it was evident that the roots were suffering more severely from these effects. We found that many proteins classified as active in energy metabolism, hormone metabolism, protein, secondary metabolism and stress functional classes showed particular differences between the two rootstocks. The proteomic/metabolite comparative analysis carried out provides new information on the possible biochemical and molecular strategies adopted by grapevine roots to counteract WS. Although further work is needed to define in detail the role(s) of the proteins and metabolites that characterize WS response, this study, involving the M4 rootstock genotype, highlights that osmotic responses, modulations of C metabolism, mitochondrial functionality and some specific responses to stress occurring in the roots play a primary role in Vitis spp. tolerance to this type of abiotic stress.
机译:根源在植物对水分压力(WS)的反应中发挥着核心作用。它们参与其对叶子的感知和信号,以及允许工厂适应维持足够的水平衡。只有一些研究已经研究了对多年生植物的根源的分子/生化反应,例如葡萄叶。该研究将两种葡萄砧座基因型(即101.14和M4)与WS不同的耐受性进行了比较,评价蛋白质组学和代谢物水平的反应。 WS诱导两种基因型中几种蛋白质的变化(分别在101.14和M4中检测到的蛋白质中的17%和22%)。蛋白质组学分析显示出与代谢物数据很好的许多代谢途径的变化。 M4显示了代谢反应,可能能够抵消WS效应,例如细胞Turgor的下降,增加氧化应激和细胞结构完整性/功能的损失。然而,在101.14中,很明显,根源从这些效果中严重遭受痛苦。我们发现,许多蛋白质分类为活性代谢,激素代谢,蛋白质,次生代谢和应力函数类别在两个砧木之间表现出特别差异。进行的蛋白质组学/代谢产物比较分析提供了有关葡萄根抗体采用的可能生化和分子策略的新信息,以抵消WS。尽管需要进一步的工作来详细地定义蛋白质和代谢物的作用,其表征WS反应的蛋白质,涉及M4砧木基因型,突出显示渗透响应,C代谢的调节,线粒体功能和一些特定反应根源中发生的压力在血管下发起主要作用。对这种非生物胁迫的耐受性。

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