首页> 外文期刊>Plant Molecular Biology >Heterologous expression of two Medicago truncatula putative ERF transcription factor genes, WXP1 and WXP2, in Arabidopsis led to increased leaf wax accumulation and improved drought tolerance, but differential response in freezing tolerance
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Heterologous expression of two Medicago truncatula putative ERF transcription factor genes, WXP1 and WXP2, in Arabidopsis led to increased leaf wax accumulation and improved drought tolerance, but differential response in freezing tolerance

机译:拟南芥中两个苜蓿假定的ERF转录因子基因WXP1和WXP2的异源表达导致增加的叶蜡积累和改善的耐旱性,但在耐冻性方面有差异

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Cuticular waxes are the major components of plant cuticle and play an important role in protecting aerial organs from damage caused by biotic and abiotic stresses. Here we report the functional characterization of two putative ERF transcription factor genes WXP1 and its paralog WXP2 from Medicago truncatula. Transgenic expression of WXP1 and WXP2 in Arabidopsis (ecotype Columbia) led to significantly increased cuticular wax deposition on leaves of 4-week-old and 6-week-old transgenic plants, assessed based on fresh weight or based on surface area. Differences in the accumulation of various wax components as well as their chain length distributions were found in the WXP1 and WXP2 plants. The major wax component in Arabidopsis, n-alkanes, increased substantially in both WXP1 and WXP2 transgenics, however, another wax component, primary alcohols, increased in WXP1 plants but decreased in WXP2 plants. Cuticle properties of the transgenic leaves were analyzed by chlorophyll leaching assay; while the WXP1 plants had no change, the WXP2 plants showed more chlorophyll leaching. Analysis of fresh weight loss from detached leaves revealed that the transgenic leaves tend to retain more water than the control. Both WXP1 and WXP2 transgenic plants showed significantly enhanced whole plant drought tolerance. Analysis of freezing tolerance at the whole plant level and measurement of electrolyte leakage from detached leaves revealed that the WXP1 plants had increased freezing tolerance while the WXP2 plants were more sensitive to low temperature when compared to the control. Transgenic expression of WXP1 had no obvious effects on plant growth and development, however, the expression of WXP2 led to slower plant growth. These results indicate that WXP1 is a useful candidate gene for improving plant drought and freezing tolerance by genetic transformation.
机译:表皮蜡是植物表皮的主要成分,并且在保护气生器官免受生物和非生物胁迫引起的损害中起重要作用。在这里我们报告了两个假定的ERF转录因子基因WXP1和它的旁系同源物WXP2的功能特性。 WXP1和WXP2在拟南芥(哥伦比亚生态型)中的转基因表达导致4周龄和6周龄转基因植物叶片上的表皮蜡沉积显着增加,基于鲜重或表面积进行评估。在WXP1和WXP2工厂中发现了各种蜡组分的积累及其链长分布的差异。拟南芥中的主要蜡成分正构烷烃在WXP1和WXP2转基因中均显着增加,但是另一种蜡成分伯醇在WXP1植物中有所增加,而在WXP2植物中有所减少。用叶绿素浸出法分析转基因叶片的表皮特性。 WXP1植物没有变化,而WXP2植物显示出更多的叶绿素浸出。对离体叶片新鲜减重的分析表明,与对照相比,转基因叶片倾向于保留更多的水分。 WXP1和WXP2转基因植物均显示出显着增强的全株抗旱性。在整个植物水平上的耐冻性分析和从离体叶片的电解质泄漏的测量结果表明,与对照相比,WXP1植物具有更高的抗冻性,而WXP2植物对低温更敏感。 WXP1的转基因表达对植物生长和发育没有明显影响,但是,WXP2的表达导致植物生长减慢。这些结果表明WXP1是通过遗传转化改善植物干旱和抗冻性的有用候选基因。

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