Analytical & Testing Center, College of Chemistry, Sichuan University, 29 Wangjiang Road, Chengdu, Sichuan, 610064, China.
Department of Chemistry, Brock University, St. Catharines, Ontario, L2S 3A1, Canada.
Chem Soc Rev. 2021 Nov 1;50(21):11844-11869. doi: 10.1039/d1cs00098e.
Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) and CRISPR-associated (Cas) systems have revolutionized biological and biomedical sciences in many ways. The last few years have also seen tremendous interest in deploying the CRISPR-Cas toolbox for analytical and diagnostic assay development because CRISPR-Cas is one of the most powerful classes of molecular machineries for the recognition and manipulation of nucleic acids. In the short period of development, many CRISPR-enabled assays have already established critical roles in clinical diagnostics, biosensing, and bioimaging. We describe in this review the recent advances and design principles of CRISPR mediated analytical tools with an emphasis on the functional roles of CRISPR-Cas machineries as highly efficient binders and molecular scissors. We highlight the diverse engineering approaches for molecularly modifying CRISPR-Cas machineries and for devising better readout platforms. We discuss the potential roles of these new approaches and platforms in enhancing assay sensitivity, specificity, multiplexity, and clinical outcomes. By illustrating the biochemical and analytical processes, we hope this review will help guide the best use of the CRISPR-Cas toolbox in detecting, quantifying and imaging biologically and clinically important molecules and inspire new ideas, technological advances and engineering strategies for addressing real-world challenges such as the on-going COVID-19 pandemic.
簇状规律间隔短回文重复序列 (CRISPR) 和 CRISPR 相关 (Cas) 系统在许多方面彻底改变了生物和生物医学科学。在过去的几年中,人们对部署 CRISPR-Cas 工具包用于分析和诊断测定开发也产生了浓厚的兴趣,因为 CRISPR-Cas 是用于识别和操作核酸的最强大的分子机械之一。在短时间的发展过程中,许多基于 CRISPR 的测定法已经在临床诊断、生物传感和生物成像中确立了关键作用。我们在这篇综述中描述了 CRISPR 介导的分析工具的最新进展和设计原则,重点介绍了 CRISPR-Cas 机械作为高效结合物和分子剪刀的功能作用。我们强调了对 CRISPR-Cas 机械进行分子修饰和设计更好读出平台的多种工程方法。我们讨论了这些新方法和平台在提高测定灵敏度、特异性、多重性和临床结果方面的潜在作用。通过说明生化和分析过程,我们希望这篇综述将有助于指导在检测、定量和成像生物和临床重要分子方面最佳使用 CRISPR-Cas 工具包,并激发新的想法、技术进步和工程策略,以应对当前的 COVID-19 大流行等现实世界的挑战。