首页> 外文期刊>Frontiers in Plant Science >A Novel NAC Transcription Factor, PbeNAC1, of Pyrus betulifolia Confers Cold and Drought Tolerance via Interacting with PbeDREBs and Activating the Expression of Stress-Responsive Genes
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A Novel NAC Transcription Factor, PbeNAC1, of Pyrus betulifolia Confers Cold and Drought Tolerance via Interacting with PbeDREBs and Activating the Expression of Stress-Responsive Genes

机译: Pyrus betulifolia 的一种新的NAC转录因子 PbeNAC1 通过与 PbeDREBs 相互作用并激活应激反应基因的表达赋予耐寒和抗旱性

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NAC (NAM, ATAF, and CUC) transcription factors are important regulator in abiotic stress and plant development. However, knowledge concerning the functions of plant NAC TFs functioning in stress tolerance and the underlying molecular basis are still limited. In this study, we report functional characterization of the NAC TF, PbeNAC1, isolated from Pyrus betulifolia. PbeNAC1 were greatly induced by cold and drought, while salt stress had little effect on expression. PbeNAC1 was localized in the nuclei showed transactivation activity. Overexpression of PbeNAC1 conferred enhanced tolerance to multiple stresses, including cold and drought, as supported by lower levels of reactive oxygen species, higher survival rate, higher activities of enzymes, relative to wild-type (WT). In addition, steady-state mRNA levels of 15 stress-responsive genes coding for either functional or regulatory proteins were higher levels in the transgenic plants relative to the WT with drought or cold treatment. yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) assays showed that PbeNAC1 protein can physically interact with PbeDREB1 and PbeDREB2A. Taken together, these results demonstrate that pear PbeNAC1 plays an important role in improving stress tolerance, possibly by interacting with PbeDREB1 and PbeDREB2A to enhance the mRNA levels of some stress-associated genes.
机译:NAC(NAM,ATAF和CUC)转录因子是非生物胁迫和植物发育的重要调节剂。但是,有关植物NAC TF在胁迫耐受性中的功能以及潜在的分子基础的知识仍然有限。在这项研究中,我们报告了NAC TF PbeNAC1的功能特征,从白桦中分离。 PbeNAC1受到干旱和干旱的强烈诱导,而盐胁迫对其表达几乎没有影响。 PbeNAC1位于细胞核中显示反式激活活性。与野生型(WT)相比,PbeNAC1的过表达赋予对多种胁迫(包括寒冷和干旱)的耐受性增强,这是由于较低的活性氧水平,较高的存活率,较高的酶活性所支持。另外,相对于干旱或寒冷处理的野生型,转基因植物中编码功能性或调节性蛋白的15个胁迫响应基因的稳态mRNA水平较高。酵母双杂交(Y2H)和双分子荧光互补(BiFC)分析表明PbeNAC1蛋白可以与PbeDREB1和PbeDREB2A物理相互作用。综上所述,这些结果表明梨PbeNAC1在改善胁迫耐受性中起重要作用,可能是通过与PbeDREB1和PbeDREB2A相互作用来增强某些胁迫相关基因的mRNA水平。

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