脱氧核酶
化学
基质(水族馆)
模块化设计
连接器
计算生物学
纳米技术
劈理(地质)
生物物理学
控制(管理)
基因表达调控
底物特异性
基因
细胞生物学
极性(国际关系)
效应器
DNA
设计要素和原则
核酶
作者
Fangzhi Yu,Siqi Zhang,Huanyu Tao,Haozhe Jin,Yuliang Zhao,Sheng-You Huang,L.J. Li
摘要
RNA-cleaving DNAzymes represent promising, protein-independent catalysts for gene silencing; yet achieving precise control over their activity remains a major challenge for biomedical applications. Here, we identify a cyclization-induced, size-dependent topological barrier that suppresses substrate binding, catalytic-core folding, and substrate cleavage of DNAzymes. Leveraging these underlying insights, we establish a modular strategy for the orthogonal control of DNAzyme activity via topological regulation. Specifically, we engineer catalytically inactive, circular DNAzyme precursors (termed circularly locked DNAzymes) bearing a cleavable linker and demonstrate that their substrate-cleavage activity can be reactivated through stimulus-responsive circular-to-linear switching. This topology-based design is broadly adaptable to diverse triggers (e.g., light, reductants, or enzymes), offering a simple and versatile route for conditional DNAzyme activation. Moreover, circularly locked DNAzymes exhibit enhanced biostability and maintain prolonged dormancy until on-demand activation, enabling precise, spatiotemporal control for potential therapeutic applications.
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