Center for RNA Nanobiotechnology and Nanomedicine, The Ohio State University, Columbus, OH 43210, USA.
Nanoscale. 2020 Aug 21;12(31):16514-16525. doi: 10.1039/d0nr02614j. Epub 2020 Jul 30.
Chemical dendrimers have been shown to be a promising drug delivery platform due to their advantageous properties such as monodispersity, multivalency and branched structure. Taking advantage of self-assembly and its intrinsic negative charge, we used RNA as the building block for dendrimer construction to eliminate complex synthesis procedures and cationic charge-related toxicity. Oligo ribonucleotides produced by solid phase chemical synthesis allow the large-scale manufacture of homologous RNA dendrimers. Employing concepts from RNA nanotechnology enabled the controllable production of dendrimers with generations from G, G, G, to G with layer-by-layer release capability. The conjugation of functional groups into individual RNA strands and the incorporation of functionalized RNA strands into the dendrimers at different sites have been reported. Anticancer drugs loaded into RNA dendrimers showed comparable cancer cell inhibition effect to free drugs. Encapsulation of cell binding ligands and hydrophobic drugs within the dendrimer significantly reduced the efficiency of cell binding and protein binding respectively, demonstrating the shielding effect of RNA dendrimers. The results imply a potential application of RNA dendrimer for delivery, shielding and controlled release of hydrophobic drugs in vivo.
化学树状聚合物因其具有单分散性、多价性和分支结构等优势而被认为是一种很有前途的药物传递平台。利用自组装及其内在的负电荷,我们使用 RNA 作为树状聚合物构建的构建块,以消除复杂的合成步骤和阳离子相关的毒性。固相化学合成产生的寡核糖核苷酸允许大规模制造同源 RNA 树状聚合物。利用 RNA 纳米技术的概念,可以可控地生产出具有从 G1、G2、G3 到 G4 代的树突状结构,并具有层状释放能力。已经报道了将官能团连接到单个 RNA 链上,并将官能化的 RNA 链整合到不同位置的树突状聚合物中。负载在 RNA 树突聚合物中的抗癌药物对癌细胞的抑制作用与游离药物相当。将细胞结合配体和疏水性药物包封在树突聚合物内,分别显著降低了细胞结合和蛋白结合的效率,证明了 RNA 树突聚合物的屏蔽作用。这些结果表明,RNA 树突聚合物在体内疏水药物的传递、屏蔽和控制释放方面具有潜在的应用前景。