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Genetic engineering of improved nitrogen use efficiency in rice by the tissue-specific expression of alanine aminotransferase

机译:丙氨酸氨基转移酶组织特异性表达改进氮利用效率的基因工程

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Nitrogen is quantitatively the most essential nutrient for plants and a major factor limiting crop productivity. One of the critical steps limiting the efficient use of nitrogen is the ability of plants to acquire it from applied fertilizer. Therefore, the development of crop plants that absorb and use nitrogen more efficiently has been a long-term goal of agricultural research. In an attempt to develop nitrogen-efficient plants, rice (Oryza sativa L.) was genetically engineered by introducing a barley AlaAT (alanine aminotransferase) cDNA driven by a rice tissue-specific promoter (OsAnt1). This modification increased the biomass and grain yield significantly in comparison with control plants when plants were well supplied with nitrogen. Compared with controls, transgenic rice plants also demonstrated significant changes in key metabolites and total nitrogen content, indicating increased nitrogen uptake efficiency. The development of crop plants that take up and assimilate nitrogen more efficiently would not only improve the use of nitrogen fertilizers, resulting in lower production costs, but would also have significant environmental benefits. These results are discussed in terms of their relevance to the development of strategies to engineer enhanced nitrogen use efficiency in crop plants.
机译:氮是定量地是植物最基本的营养素和限制作物生产率的主要因素。限制了氮气有效使用的关键步骤之一是植物从施用肥料获取它的能力。因此,在农业研究的长期目标中,吸收和使用氮的作物植物的发展是农业研究的长期目标。在尝试开发氮效率的植物中,通过引入由水稻组织特异性启动子(Osant1)驱动的大麦Alaat(丙氨酸氨基转移酶)cDNA遗传工程来遗传地改造。当植物用氮气供应良好时,这种改变与对照植物相比显着增加了生物量和谷物产量。与对照相比,转基因水稻植物还表现出关键代谢物和总氮含量的显着变化,表明氮气吸收效率增加。培养和同化氮的作物植物的发展更有效地不仅可以改善氮肥的使用,不会降低生产成本,但也会产生重大的环境效益。这些结果是根据其与工程师策略的相关性的相关性讨论,该策略增强了作物植物中的氮气利用效率。

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