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首页> 外文期刊>Journal of Plant Research >A R2R3-MYB transcription factor gene in common wheat (namely TaMYBsm1) involved in enhancement of drought tolerance in transgenic Arabidopsis
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A R2R3-MYB transcription factor gene in common wheat (namely TaMYBsm1) involved in enhancement of drought tolerance in transgenic Arabidopsis

机译:普通小麦中的R2R3-MYB转录因子基因(即TaMYBsm1)参与转基因拟南芥的抗旱性增强

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We isolated the TaMYBsm1 genes, encoding R2R3-type MYB proteins in common wheat, aimed to uncover the possible molecular mechanisms related to drought response. The TaMYBsm1 genes, TaMYBsm1-A, TaMYBsm1-B and TaMYBsm1-D, were isolated and analyzed from the common wheat cultivar Shimai 15. Their expression patterns under PEG 6000 and mannitol were monitored by semi-quantitative RT-PCR and beta-glucuronidase (Gus) assay. The function of TaMYBsm1-D under drought stress in transgenic Arabidopsis plants was investigated, and the germination rate, water loss rate, as well as the proline and malondialdehyde (MDA) content were compared with that in wild type (WT) plants. The expression of three downstream genes (DREB2A, P5CS1 and RD29A) in TaMYBsm1-D transgenic plants was analyzed. The R2R3-MYB domains of the MYBsm1 proteins were highly conserved in plants. In addition, the TaMYBsm1 proteins were targeted to the nucleus and contained transcriptional activation domains (TADs). Gus assay and semi-quantitative RT-PCR analysis demonstrated that the TaMYBsm1 genes were up-regulated when the wheat was treated by PEG and mannitol. Compared with WT plants, the germination rates were much higher, but the water loss rates were much lower in TaMYBsm1-D overexpression plants. TaMYBsm1-D transgenic plants showed distinct higher proline contents but a lower MDA content than the WT plants. The three downstream genes were highly expressed in TaMYBsm1-D transgenic plants. We concluded from these results that TaMYBsm1 genes play an important role in plant drought stress tolerance through up-regulation of DREB2A, P5CS1 and RD29A. The increase of proline content and decrease of MDA content may also be involved in the drought response.
机译:我们分离了普通小麦中编码R2R3型MYB蛋白的TaMYBsm1基因,旨在揭示与干旱响应有关的可能分子机制。从普通小麦品种Shimai 15中分离并分析了TaMYBsm1基因TaMYBsm1-A,TaMYBsm1-B和TaMYBsm1-D。通过半定量RT-PCR和β-葡糖醛酸糖苷酶( Gus)分析。研究了TaMYBsm1-D在干旱胁迫下在转基因拟南芥植物中的功能,并与野生型(WT)植物比较了发芽率,失水率,脯氨酸和丙二醛(MDA)含量。分析了三个下游基因(DREB2A,P5CS1和RD29A)在TaMYBsm1-D转基因植物中的表达。 MYBsm1蛋白的R2R3-MYB结构域在植物中高度保守。此外,TaMYBsm1蛋白靶向细胞核,并包含转录激活域(TAD)。 Gus分析和半定量RT-PCR分析表明,当用PEG和甘露醇处理小麦时,TaMYBsm1基因被上调。与WT植物相比,发芽率要高得多,但TaMYBsm1-D过表达植物的失水率要低得多。 TaMYBsm1-D转基因植物的脯氨酸含量明显高于野生植物,但丙二醛含量却较低。三个下游基因在TaMYBsm1-D转基因植物中高表达。我们从这些结果得出结论,TaMYBsm1基因通过上调DREB2A,P5CS1和RD29A在植物干旱胁迫耐受性中发挥重要作用。脯氨酸含量的增加和MDA含量的下降也可能与干旱反应有关。

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