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细胞质微 RNA 诱导 Cas9 蛋白核转位用于疾病特异性基因组修饰。

Cytosolic microRNA-inducible nuclear translocation of Cas9 protein for disease-specific genome modification.

机构信息

Center for Biomaterials, Biomedical Research Institute, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea.

Graduate School of Medical Science & Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.

出版信息

Nucleic Acids Res. 2022 Jun 10;50(10):5919-5933. doi: 10.1093/nar/gkac431.

Abstract

MicroRNA-dependent mRNA decay plays an important role in gene silencing by facilitating posttranscriptional and translational repression. Inspired by this intrinsic nature of microRNA-mediated mRNA cleavage, here, we describe a microRNA-targeting mRNA as a switch platform called mRNA bridge mimetics to regulate the translocation of proteins. We applied the mRNA bridge mimetics platform to Cas9 protein to confer it the ability to translocate into the nucleus via cleavage of the nuclear export signal. This system performed programmed gene editing in vitro and in vivo. Combinatorial treatment with cisplatin and miR-21-EZH2 axis-targeting CRISPR Self Check-In improved sensitivity to chemotherapeutic drugs in vivo. Using the endogenous microRNA-mediated mRNA decay mechanism, our platform is able to remodel a cell's natural biology to allow the entry of precise drugs into the nucleus, devoid of non-specific translocation. The mRNA bridge mimetics strategy is promising for applications in which the reaction must be controlled via intracellular stimuli and modulates Cas9 proteins to ensure safe genome modification in diseased conditions.

摘要

微小 RNA 依赖性 mRNA 降解在通过促进转录后和翻译抑制来实现基因沉默方面发挥着重要作用。受微小 RNA 介导的 mRNA 切割内在性质的启发,在这里,我们将微小 RNA 靶向 mRNA 描述为一种称为 mRNA 桥模拟物的开关平台,以调节蛋白质的易位。我们将 mRNA 桥模拟物平台应用于 Cas9 蛋白,赋予其通过切割核输出信号进入细胞核的能力。该系统在体外和体内进行了程序性基因编辑。顺铂与 miR-21-EZH2 轴靶向 CRISPR Self Check-In 的联合治疗提高了体内化疗药物的敏感性。利用内源性微小 RNA 介导的 mRNA 降解机制,我们的平台能够重塑细胞的自然生物学,使精确的药物进入细胞核,而不会发生非特异性易位。mRNA 桥模拟物策略有望应用于需要通过细胞内刺激来控制反应的情况,并调节 Cas9 蛋白,以确保在疾病条件下进行安全的基因组修饰。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a78/9177975/a4663635ff82/gkac431fig1.jpg

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