Biotechnology and Bioengineering Department, Sandia National Laboratories, Livermore, California 94551-0969, USA.
ACS Nano. 2012 Mar 27;6(3):2174-88. doi: 10.1021/nn204102q. Epub 2012 Feb 14.
The therapeutic potential of small interfering RNAs (siRNAs) is severely limited by the availability of delivery platforms that protect siRNA from degradation, deliver it to the target cell with high specificity and efficiency, and promote its endosomal escape and cytosolic dispersion. Here we report that mesoporous silica nanoparticle-supported lipid bilayers (or "protocells") exhibit multiple properties that overcome many of the limitations of existing delivery platforms. Protocells have a 10- to 100-fold greater capacity for siRNA than corresponding lipid nanoparticles and are markedly more stable when incubated under physiological conditions. Protocells loaded with a cocktail of siRNAs bind to cells in a manner dependent on the presence of an appropriate targeting peptide and, through an endocytic pathway followed by endosomal disruption, promote delivery of the silencing nucleotides to the cytoplasm. The expression of each of the genes targeted by the siRNAs was shown to be repressed at the protein level, resulting in a potent induction of growth arrest and apoptosis. Incubation of control cells that lack expression of the antigen recognized by the targeting peptide with siRNA-loaded protocells induced neither repression of protein expression nor apoptosis, indicating the precise specificity of cytotoxic activity. In terms of loading capacity, targeting capabilities, and potency of action, protocells provide unique attributes as a delivery platform for therapeutic oligonucleotides.
小干扰 RNA(siRNA)的治疗潜力受到可用的递送平台的限制,这些平台可以保护 siRNA 免受降解,以高特异性和高效率将其递送至靶细胞,并促进其内体逃逸和细胞质分散。在这里,我们报告介孔硅纳米粒子支持的脂质双层(或“原细胞”)表现出多种特性,克服了现有递送平台的许多限制。原细胞对 siRNA 的容纳能力比相应的脂质纳米颗粒高出 10 到 100 倍,在生理条件下孵育时稳定性明显更高。用鸡尾酒 siRNA 装载的原细胞以依赖于适当靶向肽存在的方式与细胞结合,并通过随后发生的内体破坏的内吞途径,将沉默核苷酸递送至细胞质。结果表明,每种靶向 siRNA 的基因的表达在蛋白质水平上受到抑制,从而导致强烈的生长停滞和凋亡诱导。用负载 siRNA 的原细胞孵育缺乏靶向肽识别的抗原的对照细胞既不会抑制蛋白质表达,也不会诱导凋亡,表明细胞毒性活性具有精确的特异性。就载药量、靶向能力和作用效力而言,原细胞作为治疗性寡核苷酸的递送平台提供了独特的属性。