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天然脱氧核酶的靶向性和直接细胞内递送可实现高度特异性的基因沉默。

Targeted and direct intracellular delivery of native DNAzymes enables highly specific gene silencing.

作者信息

Li Xia, Yang Fang, Zhou Wenjiao, Yuan Ruo, Xiang Yun

机构信息

Key Laboratory of Luminescence Analysis and Molecular Sensing, Ministry of Education, School of Chemistry and Chemical Engineering, Southwest University Chongqing 400715 P. R. China

出版信息

Chem Sci. 2020 Aug 7;11(33):8966-8972. doi: 10.1039/d0sc03974h.

Abstract

DNAzymes exhibit high potential as gene silencing agents for therapeutic applications. Such purposes, however, are significantly challenged by the targeted and successful delivery of unmodified DNAzymes into cells with minimal side effects. Here, we set out to formulate and demonstrate a new stimuli-responsive and constrained aptamer/DNAzyme (Apt/Dz) catenane nanostructure for highly specific gene silencing. The rational design of the Apt/Dz catenane nanostructure with the respective integration of the aptamer sequence and the completely closed catenane format enables both the targeted capability and significantly improved nuclease resistance, facilitating the stable and targeted delivery of unmodified Dz into cancer cells. Moreover, the Dz enzymatic activity in the constrained structure can only be conditionally regulated by the specific intracellular mRNA sequences to silence the target gene with highly reduced side effects. Results show that the Apt/Dz catenane nanostructure can effectively inhibit the expression of the target gene and the proliferation of cancer cells with high specificity.

摘要

脱氧核酶作为用于治疗应用的基因沉默剂具有很高的潜力。然而,要将未修饰的脱氧核酶以最小的副作用靶向并成功递送至细胞中,这些目标面临着重大挑战。在此,我们着手构建并展示一种新型的刺激响应性且受限的适体/脱氧核酶(Apt/Dz)连环纳米结构,用于高度特异性的基因沉默。通过合理设计Apt/Dz连环纳米结构,分别整合适体序列和完全封闭的连环形式,既实现了靶向能力,又显著提高了核酸酶抗性,有助于将未修饰的Dz稳定且靶向地递送至癌细胞中。此外,受限结构中的Dz酶活性只能由特定的细胞内mRNA序列进行条件性调控,从而以高度降低的副作用沉默靶基因。结果表明,Apt/Dz连环纳米结构能够以高特异性有效抑制靶基因的表达和癌细胞的增殖。

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