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Improving crops genome through genetic engineering of the key metabolic pathways

机译:通过关键代谢途径的基因工程改善作物基因组

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Soybean loss due to pests and pathogens is a serious problem worldwide. Soybean producers have few options to manage diseases caused by general pathogens where major genes for full resistance have not been discovered. The innate defense of soybean plants could be enhanced by improving content and composition of lignin by genetic engineering of the phenylpropanoid pathway. We used a novel technique of germ-line genetic transformation of soybean plants via natural pollen tubes as vectors. This technique uses Agrobacterium tumefaciens to mediate transfer of genes of interest to the zygote to introduce the key lignification genes (PtMYB4, PAL5, F5H, CAD1) into soybean genome. We observed 5.6% average transformation efficiency in the first generation of transgenic plants and in the second generation the presence of the transgene constructs was confirmed in more than 50% (for CsVMV/PtMYB4sens, 35SVTM/PAL5, C4H/F5H, CsVMV/CAD1 constructs) transgenic soybean lines. We confirmed the expression of the introduced genes at transcriptional level using RT-PCR and Northern blot. Functional analysis using lignin content determination and the activity of PAL5 and CAD1 enzymes demonstrated that the transgenes perform their function in planta. The proposed technique is effective and inexpensive and can be used to create novel stress and disease resistant soybean genotypes.
机译:由于害虫和病原体导致的大豆损失是全世界严重的问题。大豆生产商有很少的选择来管理由一般病原体引起的疾病,其中尚未发现具有抗性的主要基因。通过通过苯丙醇丙烷途径的基因工程改善木质素的含量和组成,可以提高大豆植物的先天防御。我们利用了一种通过天然花粉管作为载体的种细菌遗传转化技术。该技术使用肿瘤杆菌癌,介导感兴趣的基因转移,以将关键的褐煤(PTMYB4,PAL5,F5H,CAD1)引入大豆基因组中。我们在第一代转基因植物中观察到5.6%的平均转化效率,在第二代中,在50%以上确认转基因构建体的存在(对于CSVMV / PTMYB4SENS,35sVTM / PAL5,C4H / F5H,CSVMV / CAD1构建体。 )转基因大豆线。我们使用RT-PCR和Northern印迹确认了在转录水平上引入的基因的表达。使用木质素含量测定的功能分析和PAL5和CAD1酶的活性证明转基因在Planta中进行其功能。所提出的技术是有效且廉价的,可用于创造新的应力和抗性大豆基因型。

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