A universal and orthogonal safety valve for CRISPR/Cas12a without chemical modification or external stimulation

计算机科学 清脆的 变构调节 核糖核蛋白 计算生物学 基因组编辑 寡核苷酸 纳米技术 适体 核酸 生物系统 钥匙(锁) 核糖核酸 合成生物学 化学 化学改性 灵敏度(控制系统) 细胞内 Cas9 基础(线性代数) 模态(人机交互)
作者
Wang Luo,Y J Wu,Dongsheng Ni,Li Zhang,Y Y Zhang,Xiaole Han,Yaoyi Zhang,Jiu Pu,Y F He,Na Yin,Weitao Wang,Rongzhong Huang,Yongcan Guo,Yang Sun,Guoming Xie
出处
期刊:Nucleic Acids Research [Oxford University Press]
卷期号:54 (8)
标识
DOI:10.1093/nar/gkag436
摘要

CRISPR/Cas-based gene editing technologies have achieved remarkable progress over the past decade, yet their broad practical applications remain limited by safety concerns. Although regulatory strategies applied before or during CRISPR/Cas activation have substantially improved sequence, temporal, and spatial specificity, persistent activity of already activated Cas nucleases may still increase the risk of uncontrolled editing. Therefore, an effective post-activation control strategy is urgently needed. Here, we report a modification- and stimulation-free RNA inhibitor (iRNA) that functions as a post-activation safety valve for CRISPR/Cas12a. By exploiting Cas12a's allosteric sensitivity and the thermodynamic and kinetic programmability of nucleic acid strand displacement, iRNA drives already activated Cas12a ribonucleoproteins back to an inactive state, enabling universal, sequence-programmable, and orthogonal post-activation inhibition within the validated Cas12a framework. Experiments and simulations elucidate the mechanistic basis of iRNA-mediated strand displacement and demonstrate its high inhibitory efficiency, reversible cyclic control, compatibility, expandability, orthogonality, and universality. Importantly, iRNA also acts as a programmable, autonomously operating safety valve in cells, suppressing uncontrolled editing while preserving PCSK9 gene knockout. With its simple design, excellent biocompatibility, and autonomous intracellular expression, iRNA provides a foundation for next-generation controllable CRISPR systems and holds broad potential for precision therapeutics, cell therapy, and molecular diagnostics.
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