Plant Reproductive Biology, Leibniz Institute of Plant Genetics and Crop Plant Research (IPK), 06466 Seeland OT Gatersleben, Germany.
Botanical Institute, Molecular Biology and Biochemistry, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany.
J Integr Plant Biol. 2018 Dec;60(12):1127-1153. doi: 10.1111/jipb.12734.
Since the discovery that nucleases of the bacterial CRISPR (clustered regularly interspaced palindromic repeat)-associated (Cas) system can be used as easily programmable tools for genome engineering, their application massively transformed different areas of plant biology. In this review, we assess the current state of their use for crop breeding to incorporate attractive new agronomical traits into specific cultivars of various crop plants. This can be achieved by the use of Cas9/12 nucleases for double-strand break induction, resulting in mutations by non-homologous recombination. Strategies for performing such experiments - from the design of guide RNA to the use of different transformation technologies - are evaluated. Furthermore, we sum up recent developments regarding the use of nuclease-deficient Cas9/12 proteins, as DNA-binding moieties for targeting different kinds of enzyme activities to specific sites within the genome. Progress in base deamination, transcriptional induction and transcriptional repression, as well as in imaging in plants, is also discussed. As different Cas9/12 enzymes are at hand, the simultaneous application of various enzyme activities, to multiple genomic sites, is now in reach to redirect plant metabolism in a multifunctional manner and pave the way for a new level of plant synthetic biology.
自发现细菌 CRISPR(成簇规律间隔短回文重复)相关(Cas)系统的核酸酶可用作基因组工程的可编程工具以来,其应用极大地改变了植物生物学的不同领域。在这篇综述中,我们评估了它们在作物育种中的当前使用情况,以将有吸引力的新农艺性状引入各种作物的特定品种中。这可以通过使用 Cas9/12 核酸酶诱导双链断裂来实现,从而通过非同源重组产生突变。评估了执行此类实验的策略 - 从指导 RNA 的设计到使用不同的转化技术。此外,我们总结了最近在使用核酸酶缺陷型 Cas9/12 蛋白作为 DNA 结合结构域方面的进展,以将不同种类的酶活性靶向基因组内的特定位点。还讨论了在植物中碱基脱氨酶、转录诱导和转录抑制以及成像方面的进展。由于不同的 Cas9/12 酶可用,现在可以同时应用多种酶活性,针对多个基因组位点,以多功能方式重新定向植物代谢,为植物合成生物学的新水平铺平道路。