Investigation of the effect of AtWIN1/SHN1 overexpression on poplar trees

Shaneka Lawson
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引用次数: 1

Abstract

Background: Interactions between plants and the environment occur primarily at the leaf level. The plant cuticle consists of a menagerie of lipids, waxes and polymers merging to form an insoluble membrane to protect plant leaves from contamination. In Arabidopsis, wax Inducer1/shine1 (WIN1/SHN1) and its family members have demonstrated roles in wax biosynthesis and cutin formation, the primary component of the cuticle layer composition. Constitutive overexpression of the Arabidopsis WIN1/SHN1 (wax inducer1, shine1, AtWIN1/SHN1) gene has led to improved water stress tolerance, altered stomatal densities and morphological changes in leaf and flower development in Arabidopsis. Other expression studies using the WIN1/SHN1 gene have shown heightened defense responses and malformations of the cuticle. Materials and Methods: Constructs of AtWIN1/SHN1 were developed and used to genetically transform poplar trees that were later analyzed to verify presence of the construct. Results: A total of five transgenic lines with 100 ramets each were generated for water-use efficiency testing. All lines displayed glossy leaves, decreased stomatal densities and improved water-use efficiencies. Several lines presented similar phenotypes and water-use efficiencies but others were unique. Conclusion: This study used an inventive method to generate ornamental trees with improved water-use efficiencies as a proactive method for protecting water resources and resisting drought.
AtWIN1/SHN1过表达对杨树影响的研究
背景:植物与环境的相互作用主要发生在叶片水平。植物角质层由脂质、蜡质和聚合物组成,形成一层不溶性膜,保护植物叶片免受污染。在拟南芥中,蜡诱导因子1/shine1 (WIN1/SHN1)及其家族成员在蜡的生物合成和角质层形成中发挥重要作用。拟南芥WIN1/SHN1 (wax inducer1, shine1, AtWIN1/SHN1)基因的组成性过表达导致拟南芥叶片和花朵发育过程中气孔密度的改变和形态的改变,从而提高了对水分胁迫的耐受性。其他使用WIN1/SHN1基因的表达研究显示了增强的防御反应和角质层畸形。材料和方法:AtWIN1/SHN1构建体被开发出来,并用于对杨树进行遗传转化,随后进行分析以验证该构建体的存在。结果:共获得5个转基因品系,每个品系100株,用于水分利用效率试验。所有品系叶片光滑,气孔密度降低,水分利用效率提高。一些品系表现出相似的表型和水分利用效率,但其他品系则是独特的。结论:本研究采用了一种创新的方法来培育具有更高水分利用效率的观赏树木,为保护水资源和抗旱提供了一种积极的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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