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CRISPR-Cas orthologues and variants: optimizing the repertoire, specificity and delivery of genome engineering tools

机译:CRISPR-CAS正端和变体:优化基因组工程工具的曲目,特异性和交付

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摘要

Robust and cost-effective genome editing in a diverse array of cells and model organisms is now possible thanks to the discovery of the RNA-guided endonucleases of the CRISPR-Cas system. The commonly used Cas9 of Streptococcus pyogenes shows high levels of activity but, depending on the application, has been associated with some shortcomings. Firstly, the enzyme has been shown to cause mutagenesis at genomic sequences resembling the target sequence. Secondly, the stringent requirement for a specific motif adjacent to the selected target site can limit the target range of this enzyme. Lastly, the physical size of Cas9 challenges the efficient delivery of genomic engineering tools based on this enzyme as viral particles for potential therapeutic applications. Related and parallel strategies have been employed to address these issues. Taking advantage of the wealth of structural information that is becoming available for CRISPR-Cas effector proteins, Cas9 has been redesigned by mutagenizing key residues contributing to activity and target recognition. The protein has also been shortened and redesigned into component subunits in an attempt to facilitate its efficient delivery. Furthermore, the CRISPR-Cas toolbox has been expanded by exploring the properties of Cas9 orthologues and other related effector proteins from diverse bacterial species, some of which exhibit different target site specificities and reduced molecular size. It is hoped that the improvements in accuracy, target range and efficiency of delivery will facilitate the therapeutic application of these site-specific nucleases.
机译:由于CRISPR-CAS系统的RNA引导的内切核酸酶发现,现在可以在多种细胞和模型生物中进行鲁棒和经济高效的基因组编辑。常用的链球菌的Cas9 Pyogenes显示出高水平的活性,但根据应用,与应用有关。首先,已显示酶在类似于靶序列的基因组序列中引起诱变。其次,与所选靶位点相邻的特定基序的严格要求可以限制该酶的目标范围。最后,Cas9的物理尺寸挑战基于该酶作为潜在治疗应用的病毒颗粒的基因组工具的有效传递。已采用相关和并行策略来解决这些问题。利用对Crisp-CAS效应蛋白的丰富的结构信息,Cas9通过诱变有助于活动和目标识别的关键残留物重新设计。蛋白质也被缩短并重新设计成组件亚基,以便促进其有效的交付。此外,通过探索Cas9矫正物和其他相关效应蛋白的性质,从各种细菌种类中探讨了CRISPR-CAS工具箱,其中一些表现出不同的靶位特异性并降低分子大小。希望准确性,目标范围和递送效率的改善将有助于这些位点特异性核酸酶的治疗应用。

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