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SiRNA-aptamer chimeras on nanoparticles: preserving targeting functionality for effective gene silencing

机译:纳米颗粒上的SiRNA适体嵌合体:保留靶向功能以实现有效的基因沉默

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SiRNA-aptamer chimeras are emerging as a highly promising approach for cell-type specific delivery of siRNA due to the outstanding targeting capability of aptamers and the compatibility of chimeras with native ribonuclease (Dicer) processing. For efficient RNA interference (RNAi), however, additional challenges must be addressed, in particular how to get siRNA out of the endosome after cell entry and how to preserve aptamer targeting specificity when chimeras are combined with delivery carriers. Here, we report a rationally designed nanoparticle vector that simultaneously displays large surface area for high siRNA payload, exposed aptamer for specific targeting, proton sponge effect for endosome escape, and fluorescence for imaging and quantification. A key concept of this work is to graft chimeras onto nanoparticle surface via a two-step process: first immobilizing siRNA onto nanoparticle via noncovalent interactions to facilitate intracellular unpackaging and reduce nanoparticle surface charge (avoiding nonspecific electrostatic interactions between aptamers and nanoparticles) and then coupling siRNA and aptamer with retained conformation and high accessibility. Compared with conventional one-step adsorption of siRNA-aptamer chimeras onto nanoparticles with random orientations and conformations, which does not elicit much improved RNAi effect than nontargeted nanoparticle-siRNA complexes (~6-8% improvement of the total cell population), under the same RNA concentration our approach shows selective gene silencing and enables 34% more silenced cells of the total cell population over nontargeted nanoparticle-siRNA complexes. This remarkable difference in RNAi efficiency using nanoparticle-chimera complexes is directly related to cell uptake discrepancy resulting from aptamer conformation on the nanoparticle surface (intact vs random).
机译:由于适体的出色靶向能力以及嵌合体与天然核糖核酸酶(Dicer)加工的相容性,SiRNA适体嵌合体正成为一种高度有前途的方法,可用于细胞类型的siRNA特异性递送。然而,对于有效的RNA干扰(RNAi),必须解决其他挑战,尤其是在嵌合体与递送载体​​结合后如何在细胞进入后将siRNA从内体中去除以及如何保持适体靶向特异性。在这里,我们报告了一个合理设计的纳米颗粒载体,该载体同时显示出较大的表面积以实现较高的siRNA负载,暴露的适体用于特异性靶向,质子海绵效应用于内体逃逸以及荧光用于成像和定量。这项工作的关键概念是通过两步过程将嵌合体移植到纳米颗粒表面:首先通过非共价相互作用将siRNA固定在纳米颗粒上,以促进细胞内解包装并减少纳米颗粒表面电荷(避免适体和纳米颗粒之间的非特异性静电相互作用),然后偶联siRNA和适体具有保留的构象和高可及性。与常规的一步法将siRNA-适配体嵌合体吸附到具有随机方向和构象的纳米颗粒上相比,在无吸附条件下,它不会比非靶向的纳米颗粒-siRNA复合物产生更大的RNAi效应(总细胞群提高了约6-8%)。在相同的RNA浓度下,我们的方法显示出选择性的基因沉默,并且使非靶向纳米颗粒-siRNA复合物的沉默细胞总数增加了34%。使用纳米粒子-嵌合体复合物在RNAi效率方面的显着差异直接与纳米粒子表面上的适体构象(完整与随机)导致的细胞摄取差异有关。

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