Department of Molecular Genetics Thalassaemia, The Cyprus Institute of Neurology and Genetics, 6 International Airport Avenue, 1683, Nicosia, Cyprus.
Cyprus School of Molecular Medicine, Nicosia, Cyprus.
Mol Diagn Ther. 2019 Apr;23(2):187-200. doi: 10.1007/s40291-019-00391-4.
Designer nucleases are versatile tools for genome modification and therapy development and have gained widespread accessibility with the advent of clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein (Cas) technology. Prokaryotic RNA-guided nucleases of CRISPR/Cas type, since first being adopted as editing tools in eukaryotic cells, have experienced rapid uptake and development. Diverse modes of delivery by viral and non-viral vectors and ongoing discovery and engineering of new CRISPR/Cas-type tools with alternative target site requirements, cleavage patterns and DNA- or RNA-specific action continue to expand the versatility of this family of nucleases. CRISPR/Cas-based molecules may also act without double-strand breaks as DNA base editors or even without single-stranded cleavage, be it as epigenetic regulators, transcription factors or RNA base editors, with further scope for discovery and development. For many potential therapeutic applications of CRISPR/Cas-type molecules and their derivatives, efficiencies still need to be improved and safety issues addressed, including those of preexisting immunity against Cas molecules, off-target activity and recombination and sequence alterations relating to double-strand-break events. This review gives a concise overview of current CRISPR/Cas tools, applications, concerns and trends.
设计性核酸酶是基因组修饰和治疗开发的多功能工具,随着成簇规律间隔短回文重复(CRISPR)/CRISPR 相关蛋白(Cas)技术的出现,其应用得到了广泛普及。自从 CRISPR/Cas 型原核 RNA 引导核酸酶首次被用作真核细胞的编辑工具以来,它们经历了快速的吸收和发展。通过病毒和非病毒载体的多种传递方式,以及对具有替代靶位点要求、切割模式和 DNA 或 RNA 特异性作用的新型 CRISPR/Cas 型工具的持续发现和工程改造,不断扩展了这一家族核酸酶的多功能性。CRISPR/Cas 基分子甚至可以在没有双链断裂的情况下作为 DNA 碱基编辑器发挥作用,或者根本不需要单链切割,无论是作为表观遗传调节剂、转录因子还是 RNA 碱基编辑器,都有进一步的发现和发展空间。对于 CRISPR/Cas 型分子及其衍生物的许多潜在治疗应用,仍需要提高效率并解决安全性问题,包括对 Cas 分子的固有免疫、脱靶活性以及与双链断裂事件相关的重组和序列改变。本文综述了当前 CRISPR/Cas 工具、应用、关注点和趋势。