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首页> 外文期刊>Plant molecular biology reporter >Overexpression of TaSRK2C1, a Wheat SNF1-Related Protein Kinase 2 Gene, Increases Tolerance to Dehydration, Salt, and Low Temperature in Transgenic Tobacco
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Overexpression of TaSRK2C1, a Wheat SNF1-Related Protein Kinase 2 Gene, Increases Tolerance to Dehydration, Salt, and Low Temperature in Transgenic Tobacco

机译:TaSRK2C1,小麦SNF1相关蛋白激酶2基因的过表达,增加了转基因烟草对脱水,盐和低温的耐受性

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摘要

Protein phosphorylation-dephosphorylations are major signaling events induced by osmotic stress in plants. In this study, a wheat SNF1-related protein kinase 2 (SnRK2) gene, TaSRK2C1, was functionally characterized. The results from the sequence analysis showed that TaSRK2C1 contains conserved domains typified in SnRK2 protein kinases, including the ATP binding site, N-myristoylation site, protein kinase-activating signature, and transmembrane-spanning region. The transcripts of TaSRK2C1 in roots were induced by treatments of dehydration, high salinity, low temperature, and exogenous abscisic acid, which suggest its potential roles relative to osmotic stress signal transductions. The ectopic expression of TaSRK2C1 in tobacco significantly up-regulated the expression levels of three putative central regulators, namely, RD29a, DREB1A, and DREB2, which are involved in responding to osmotic stresses. Thus, higher levels of free proline and soluble carbohydrates in transgenic plants were detected, and conferred tolerance to high salinity, dehydration stress, and low temperature in plants. The overall results in this study indicate that TaSRK2C1 have important functions in plant response and adaptation to osmotic stresses via mediation of signal transductions initiated by distinct abiotic stresses. Manipulating TaSRK2C1 toward improving the osmotic-stress tolerance in crop plants is feasible.
机译:蛋白质磷酸化-去磷酸化是植物中渗透胁迫诱导的主要信号转导事件。在这项研究中,小麦SNF1相关蛋白激酶2(SnRK2)基因TaSRK2C1在功能上得到了表征。序列分析的结果表明,TaSRK2C1包含以SnRK2蛋白激酶为代表的保守域,包括ATP结合位点,N-肉豆蔻酰化位点,蛋白激酶激活标记和跨膜区域。通过脱水,高盐度,低温和外源脱落酸处理可以诱导根中TaSRK2C1的转录本,表明其相对于渗透胁迫信号转导的潜在作用。 TaSRK2C1在烟草中的异位表达显着上调了三个假定的中央调节剂RD29a,DREB1A和DREB2的表达水平,它们参与了对渗透胁迫的响应。因此,在转基因植物中检测到较高水平的游离脯氨酸和可溶性碳水化合物,并且赋予了植物高盐度,脱水胁迫和低温的耐受性。这项研究的总体结果表明,TaSRK2C1通过介导由不同的非生物胁迫引发的信号转导,在植物应答和对渗透胁迫的适应中具有重要功能。操纵TaSRK2C1以提高农作物的渗透胁迫耐受性是可行的。

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