Liu Xiaoxuan, Liu Cheng, Chen Chao, Bentobji Mélanie, Cheillan Francine Azario, Piana Jeanne Thomassin, Qu Fanqi, Rocchi Palma, Peng Ling
Aix-Marseille Université, CNRS, Centre Interdisciplinaire de Nanoscience de Marseille, CINaM UMR 7325, Marseille, France.
Aix-Marseille Université, CNRS, Centre Interdisciplinaire de Nanoscience de Marseille, CINaM UMR 7325, Marseille, France; College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, P. R. China.
Nanomedicine. 2014 Nov;10(8):1627-36. doi: 10.1016/j.nano.2014.05.008. Epub 2014 Jun 3.
Small interfering RNAs (siRNA) are emerging as novel therapeutic agents, providing competent delivery systems that are available. Dendrimers, a special family of synthetic macromolecules, represent an exciting delivery platform by virtue of their well-defined dendritic structure and unique multivalency and cooperativity confined within a nanoscale volume. Here, we report a Dicer-substrate siRNA (dsiRNA) which, when delivered using a structurally flexible triethanolamine-core poly(amidoamine) dendrimer of generation 5 as the nanocarrier, gives rise to a much greater RNAi response than that produced with conventional siRNA. Further decoration of the dsiRNA/dendrimer complexes with a dual targeting peptide simultaneously promoted cancer cell targeting through interacting with integrins and cell penetration via the interaction with neuropilin-1 receptors, which led to improved gene silencing and anticancer activity. Altogether, our results disclosed here open a new avenue for therapeutic implementation of RNAi using dendrimer nanovector based targeted delivery.
This study demonstrates superior therapeutic properties of siRNA when combined with a dendrimer-based targeted nano-delivery system. Similar approaches may eventually gain clinical utility following additional studies determining safety and efficacy.
小干扰RNA(siRNA)正成为新型治疗剂,前提是要有可用的有效递送系统。树枝状聚合物是一类特殊的合成大分子,凭借其明确的树枝状结构以及纳米级体积内独特的多价性和协同性,成为了一个令人兴奋的递送平台。在此,我们报道了一种Dicer底物siRNA(dsiRNA),当使用结构灵活的第5代三乙醇胺核心聚(酰胺胺)树枝状聚合物作为纳米载体进行递送时,它所引发的RNA干扰反应比传统siRNA产生的反应要大得多。用双靶向肽对dsiRNA/树枝状聚合物复合物进行进一步修饰,通过与整合素相互作用同时促进癌细胞靶向,并通过与神经纤毛蛋白-1受体相互作用实现细胞穿透,从而提高了基因沉默效果和抗癌活性。总之,我们在此披露的结果为使用基于树枝状聚合物纳米载体的靶向递送进行RNA干扰的治疗应用开辟了一条新途径。
本研究证明了siRNA与基于树枝状聚合物的靶向纳米递送系统结合时具有卓越的治疗特性。在进一步确定安全性和有效性的研究之后,类似的方法最终可能会获得临床应用价值。