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Trehalose metabolism is activated upon chilling in grapevine and might participate in Burkholderia phytofirmans induced chilling tolerance

机译:在葡萄中冷藏后,海藻糖的代谢被激活,并可能参与伯克霍尔德菌(Burkholderia phytofirmans)诱导的冷藏耐受性

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During the last decade, there has been growing interest in the role of trehalose metabolism in tolerance to abiotic stress in higher plants, especially cold stress. So far, this metabolism has not yet been studied in Vitis vinifera L., despite the economic importance of this crop. The goal of this paper was to investigate the involvement of trehalose metabolism in the response of grapevine to chilling stress, and to compare the response in plants bacterised with Burkholderia phytofirmans strain PsJN, a plant growth-promoting rhizobacterium that confers grapevine chilling tolerance, with mock-inoculated plants. In silico analysis revealed that the V. vinifera L. genome contains genes encoding the enzymes responsible for trehalose synthesis and degradation. Transcript analysis showed that these genes were differentially expressed in various plant organs, and we also characterised their response to chilling. Both trehalose and trehalose 6-phosphate (T6P) were present in grapevine tissues and showed a distinct pattern of accumulation upon chilling. Our results suggest a role for T6P as the main active molecule in the metabolism upon chilling, with a possible link with sucrose metabolism. Furthermore, plants colonised by B. phytofirmans and cultivated at 26°C accumulated T6P and trehalose in stems and leaves at concentrations similar to non-bacterised plants exposed to chilling temperatures for 1 day. Overall, our data suggest that T6P and trehalose accumulate upon chilling stress in grapevine and might participate in the resistance to chilling stress conferred by B. phytofirmans.
机译:在过去的十年中,人们越来越关注海藻糖代谢在高等植物特别是寒冷胁迫下对非生物胁迫的耐受性中的作用。迄今为止,尽管该作物具有经济重要性,但尚未在葡萄中研究这种新陈代谢。本文的目的是研究海藻糖代谢与葡萄对低温胁迫的反应有关,并比较用Burkholderia phytofirmans菌株PsJN细菌发酵的植物中的反应,该菌株可促进植物生长,并赋予葡萄抗冷性。 -接种的植物。在计算机分析中,V。vinifera L.基因组包含编码负责海藻糖合成和降解的酶的基因。转录分析显示这些基因在植物的各个器官中差异表达,我们还表征了它们对低温的响应。海藻糖和6-磷酸海藻糖(T6P)均存在于葡萄组织中,并且在冷却后显示出明显的积累模式。我们的结果表明,T6P在冷却后作为新陈代谢中的主要活性分子起作用,可能与蔗糖代谢有关。此外,植物枯草芽孢杆菌定居并在26°C下培养的植物在茎和叶中积累的T6P和海藻糖的浓度与暴露于低温下1天的非细菌植物相似。总体而言,我们的数据表明,T6P和海藻糖会在葡萄的低温胁迫下积聚,并可能参与抗植物性芽胞杆菌赋予的低温胁迫。

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