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首页> 外文期刊>Plant Cell, Tissue and Organ Culture: An International Journal on in Vitro Culture of Higher Plants >Overexpression of MpGR-RBP1, a glycine-rich RNA-binding protein gene from Malus prunifolia (Willd.) Borkh., confers salt stress tolerance and protects against oxidative stress in Arabidopsis
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Overexpression of MpGR-RBP1, a glycine-rich RNA-binding protein gene from Malus prunifolia (Willd.) Borkh., confers salt stress tolerance and protects against oxidative stress in Arabidopsis

机译:MpGR-RBP1(一种来自苹果属(Malus prunifolia,Willd。)Borkh。的富含甘氨酸的RNA结合蛋白基因)的过表达赋予盐胁迫耐受性并保护拟南芥中的氧化胁迫

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Glycine-rich RNA-binding proteins (GR-RBPs) are involved in the post-transcriptional regulation of genes. Although they are known to have roles in plant responses to environmental stresses, their functions in diverse species under stress conditions are still unverified. We assessed the biological roles of MpGR-RBP1, a GR-RBP from Malus prunifolia that is up-regulated by salinity, oxidation, or abscisic acid. Under control of the 35S promoter, its ectopic expression in Arabidopsis resulted in accelerated seed germination and seedling growth in two transgenic lines when plants were exposed to high salt or oxidative stress. This gene also contributed to the enhancement of salt tolerance in transgenic Arabidopsis plants. Consistently, the enhanced tolerance was confirmed by the changes of physiological parameters including electrolyte leakage, chlorophyll concentration and malondialdehyde accumulation. The accumulation of reactive oxygen species (ROS) in the transgenics was appreciably decreased under salt stress. In addition, MpGR-RBP1 had an effect on stomatal closure under saline conditions. Taken together, these results demonstrate that MpGR-RBP1 affects the growth and tolerance of salt-stressed Arabidopsis plants. Its functioning may be due, in part, to its influence on ROS accumulation and stomatal behavior, thereby leading to improved salt tolerance.
机译:富含甘氨酸的RNA结合蛋白(GR-RBP)参与基因的转录后调控。尽管已知它们在植物对环境胁迫的反应中具有作用,但在胁迫条件下它们在不同物种中的功能仍未得到证实。我们评估了MpGR-RBP1的生物学作用,MpGR-RBP1是一种来自海棠的GR-RBP,受盐度,氧化或脱落酸上调。在植物暴露于高盐或氧化胁迫下,在35S启动子的控制下,其在拟南芥中的异位表达导致两个转基因品系中的种子萌发和幼苗生长加快。该基因还有助于提高转基因拟南芥植物的耐盐性。一致地,耐受性的提高通过生理参数的变化证实,包括电解质渗漏,叶绿素浓度和丙二醛积累。在盐胁迫下,转基因中活性氧(ROS)的积累明显减少。此外,MpGR-RBP1在盐分条件下对气孔关闭有影响。综上所述,这些结果表明,MpGR-RBP1影响盐胁迫拟南芥植物的生长和耐受性。其功能可能部分归因于其对ROS积累和气孔行为的影响,从而提高了耐盐性。

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