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Cas Endonuclease Technology—A Quantum Leap in the Advancement of Barley and Wheat Genetic Engineering

机译:Cas核酸内切酶技术—大麦和小麦基因工程进展的量子飞跃

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摘要

Domestication and breeding have created productive crops that are adapted to the climatic conditions of their growing regions. Initially, this process solely relied on the frequent occurrence of spontaneous mutations and the recombination of resultant gene variants. Later, treatments with ionizing radiation or mutagenic chemicals facilitated dramatically increased mutation rates, which remarkably extended the genetic diversity of crop plants. However, a major drawback of conventionally induced mutagenesis is that genetic alterations occur simultaneously across the whole genome and at very high numbers per individual plant. By contrast, the newly emerging Cas endonuclease technology allows for the induction of mutations at user-defined positions in the plant genome. In fundamental and breeding-oriented research, this opens up unprecedented opportunities for the elucidation of gene functions and the targeted improvement of plant performance. This review covers historical aspects of the development of customizable endonucleases, information on the mechanisms of targeted genome modification, as well as hitherto reported applications of Cas endonuclease technology in barley and wheat that are the agronomically most important members of the temperate cereals. Finally, current trends in the further development of this technology and some ensuing future opportunities for research and biotechnological application are presented.
机译:驯化和育种已创造出适应其生长地区气候条件的生产性作物。最初,此过程仅依赖于自发突变的频繁发生和所得基因变体的重组。后来,用电离辐射或诱变化学物质进行的处理大大提高了突变率,从而显着扩展了农作物的遗传多样性。然而,常规诱变的主要缺点是遗传改变同时发生在整个基因组中,并且每株植物的发生数量很高。相比之下,新兴的Cas核酸内切酶技术可在植物基因组中用户定义的位置诱导突变。在基础和以育种为导向的研究中,这为阐明基因功能和有针对性地提高植物性能打开了前所未有的机会。这篇综述涵盖了可定制核酸内切酶发展的历史方面,靶向基因组修饰机制的信息,以及迄今为止报道的Cas核酸内切酶技术在大麦和小麦中的应用,而大麦和小麦是温带谷物最重要的农艺学方面。最后,介绍了该技术进一步发展的当前趋势以及随后进行研究和生物技术应用的一些机会。

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