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Nitrogen fixation in maize: breeding opportunities

机译:玉米氮固定:育种机会

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Maize (Zea mays L.) is a highly versatile crop with huge demand of nitrogen (N) for its growth and development. N is the most essential macronutrient for crop production. Despite being the highest abundant element in the atmosphere (similar to 78%), it is scarcely available for plant growth. To fulfil the N demand, commercial agriculture is largely dependent on synthetic fertilizers. Excessive dependence on inorganic fertilizers has created extensive ecological as well as economic problems worldwide. Hence, for a sustainable solution to nitrogenous fertilizer use, development of biological nitrogen fixation (BNF) in cereals will be the best alternative. BNF is a well-known mechanism in legumes where diazotrophs convert atmospheric nitrogen (N equivalent to N) to plant-available form, ammonium (NH4+). From many decades, researchers have dreamt to develop a similar symbiotic partnership as in legumes to the cereal crops. A large number of endophytic diazotrophs have been found associated with maize. Elucidation of the genetic and molecular aspects of their interaction will open up new avenues to introgress BNF in maize breeding. With the advanced understanding of N-fixation process, researchers are at a juncture of breeding and engineering this symbiotic relationships in cereals. Different breeding, genetic engineering, omics, gene editing, and synthetic biology approaches will be discussed in this review to make BNF a reality in cereals. It will help to provide a road map to develop/improve the BNF in maize to an advance step for the sustainable production system to achieve the food and nutritional security.
机译:玉米(Zea mays L.)是一种用途广泛的作物,其生长发育需要大量的氮。氮是作物生产中最重要的大量营养素。尽管它是大气中含量最高的元素(接近78%),但几乎不可用于植物生长。为了满足氮需求,商业农业在很大程度上依赖合成肥料。过度依赖无机肥料在世界范围内造成了广泛的生态和经济问题。因此,为了可持续地解决氮肥使用问题,在谷物中发展生物固氮(BNF)将是最佳选择。BNF是豆科植物中一种众所周知的机制,在豆科植物中,重氮营养体将大气中的氮(相当于氮)转化为植物的有效形式铵(NH4+)。几十年来,研究人员一直梦想着发展一种与豆类作物和谷类作物类似的共生伙伴关系。大量内生重氮营养体与玉米有关。阐明它们相互作用的遗传和分子方面将为玉米育种中的导入BNF开辟新途径。随着对固氮过程的深入了解,研究人员正处于培育和工程这种谷物共生关系的关键时刻。本综述将讨论不同的育种、基因工程、组学、基因编辑和合成生物学方法,使BNF在谷物中成为现实。这将有助于提供一个路线图,以开发/改善玉米中的生物固氮,从而推进可持续生产系统,实现粮食和营养安全。

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