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Visualizing the Attack of RNase Enzymes on Dendriplexes and Naked RNA Using Atomic Force Microscopy

机译:使用原子力显微镜可视化RNase酶对树状丛和裸RNA的攻击

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摘要

Cationic polymers such as poly(amidoamine), PAMAM, dendrimers have been used to electrostatically complex siRNA molecules forming dendriplexes for enhancing the cytoplasmic delivery of the encapsulated cargo. However, excess PAMAM dendrimers is typically used to protect the loaded siRNA against enzymatic attack, which results in systemic toxicity that hinders the in vivo use of these particles. In this paper, we evaluate the ability of G4 (flexible) and G5 (rigid) dendrimers to complex model siRNA molecules at low +/− ratio of 2/1 upon incubation for 20 minutes and 24 hours. We examine the ability of the formed G4 and G5 dendriplexes to shield the loaded siRNA molecules and protect them from degradation by RNase V1 enzymes using atomic force microscopy (AFM). Results show that G4 and G5 dendrimers form similar hexagonal complexes upon incubation with siRNA molecules for 20 minutes with average full width of 43±19.3 nm and 62±8.3 at half the maximum height, respectively. AFM images show that these G4 and G5 dendriplexes were attacked by RNase V1 enzyme leading to degradation of the exposed RNA molecules that increased with the increase in incubation time. In comparison, incubating G4 and G5 dendrimers with siRNA for 24 hours led to the formation of large particles with average full width of 263±60 nm and 48.3±2.5 nm at half the maximum height, respectively. Both G4 and G5 dendriplexes had a dense central core that proved to shield the loaded RNA molecules from enzymatic attack for up to 60 minutes. These results show the feasibility of formulating G4 and G5 dendriplexes at a low N/P (+/−) ratio that can resist degradation by RNase enzymes, which reduces the risk of inducing non-specific toxicity when used in vivo.
机译:阳离子聚合物(例如聚(酰胺基胺),PAMAM,树状聚合物)已用于使siRNA分子发生静电复合,从而形成树状复合物,以增强被包裹货物的细胞质传递。但是,过量的PAMAM树状聚合物通常用于保护负载的siRNA免受酶的攻击,从而导致全身毒性,从而阻碍了这些颗粒在体内的使用。在本文中,我们在孵育20分钟和24小时后,以2/1的低+/-比评估了G4(柔性)和G5(刚性)树状聚合物对复杂模型siRNA分子的能力。我们检查了形成的G4和G5树突状复合体的能力,以屏蔽加载的siRNA分子,并使用原子力显微镜(AFM)保护它们免受RNase V1酶的降解。结果显示,与siRNA分子孵育20分钟后,G4和G5树状聚合物形成相似的六边形复合物,其平均全宽分别为最大高度的一半,分别为43±19.3 nm和62±8.3。 AFM图像显示,这些G4和G5树突状复合体受到RNase V1酶的攻击,导致暴露的RNA分子降解,并随着孵育时间的增加而增加。相比之下,将G4和G5树状大分子与siRNA孵育24小时导致形成了平均最大全宽度分别为最大高度一半的263±60 nm和48.3±2.5 nm的大颗粒。 G4和G5树突状复合体均具有致密的中央核心,事实证明,该核心在长达60分钟的时间里均能保护负载的RNA分子免受酶的攻击。这些结果表明,以低N / P(+/-)比例配制G4和G5树突状复合物的可行性,可以抵抗RNase酶的降解,从而降低了在体内使用时诱导非特异性毒性的风险。

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