miRNA感应引导RNA对CRISPR活性的组织特异性调控

Antonio Garcia Guerra, Chaitra Sathyaprakash, Olivier Gerrit de Jong, Wooi Lim, Pieter Vader, Samir EL Andaloussi, Jonathan Bath, Jesus Reine, Yoshitsugu Aoki, Andrew Turberfield, Matthew Wood, Carlo Rinaldi
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引用次数: 0

摘要

核酸纳米结构因其序列可编程的结构和功能而为生物医学应用提供了独特的机会,从而能够设计出对分子线索的复杂反应。根据内源分子特征控制治疗货物的生物活性,有可能克服转化研究中的主要障碍:细胞特异性和脱靶效应。内源性 microRNA 可用于描述细胞类型和细胞状态,是 RNA 纳米设备的理想输入。在这里,我们介绍了 CRISPR MiRAGE(miRNA 激活的基因组编辑),这是一种由动态单导 RNA 组成的工具,它能感知与 Argonaute 蛋白复合的 miRNA,并根据检测到的 miRNA 特征控制下游 CRISPR 活性。我们研究了 miRNA 感知单导 RNA 的操作,并在杜氏肌营养不良症模型中通过 CRISPR MiRAGE 实现了肌肉特异性基因编辑激活。通过实现由 RNA 控制的基因编辑活动,这项技术为推进针对人类疾病的组织特异性 CRISPR 治疗创造了机会。
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Tissue-specific modulation of CRISPR activity by miRNA-sensing guide RNAs
Nucleic acid nanostructures offer unique opportunities for biomedical applications due to their sequence-programmable structures and functions, which enable the design of complex responses to molecular cues. Control of the biological activity of therapeutic cargoes based on endogenous molecular signatures holds the potential to overcome major hurdles in translational research: cell specificity and off-target effects. Endogenous microRNAs can be used to profile cell type and cell state and are ideal inputs for RNA nanodevices. Here we present CRISPR MiRAGE (miRNA-activated genome editing), a tool comprising a dynamic single-guide RNA that senses miRNA complexed with Argonaute proteins and controls downstream CRISPR activity based on the detected miRNA signature. We study the operation of the miRNA-sensing single-guide RNA and attain muscle-specific activation of gene editing through CRISPR MiRAGE in models of Duchenne muscular dystrophy. By enabling RNA-controlled gene editing activity, this technology creates opportunities to advance tissue-specific CRISPR treatments for human diseases.
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