一种用于开发基于正电荷金纳米粒子的有效 siRNA 递呈载体的简易方法。
A Straightforward Method for the Development of Positively Charged Gold Nanoparticle-Based Vectors for Effective siRNA Delivery.
机构信息
Prokhorov General Physics Institute, Russian Academy of Sciences, 119991 Moscow, Russia.
National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), 115409 Moscow, Russia.
出版信息
Molecules. 2023 Apr 8;28(8):3318. doi: 10.3390/molecules28083318.
The therapeutic potential of short interfering RNA (siRNA) to treat many diseases that are incurable with traditional preparations is limited by the extensive metabolism of serum nucleases, low permeability through biological membrane barriers because of a negative charge, and endosomal trapping. Effective delivery vectors are required to overcome these challenges without causing unwanted side effects. Here, we present a relatively simple synthetic protocol to obtain positively charged gold nanoparticles (AuNPs) with narrow size distribution and the surface modified with Tat-related cell-penetrating peptide. The AuNPs were characterized using TEM and the localized surface plasmon resonance technique. The synthesized AuNPs showed low toxicity in experiments in vitro and were able to effectively form complexes with double-stranded siRNA. The obtained delivery vehicles were used for intracellular delivery of siRNA in an ARPE-19 cell line transfected with secreted embryonic alkaline phosphatase (SEAP). The delivered oligonucleotide remained intact and caused a significant knockdown effect on SEAP cell production. The developed material could be useful for delivery of negatively charged macromolecules, such as antisense oligonucleotides and various RNAs, particularly for retinal pigment epithelial cell drug delivery.
短干扰 RNA(siRNA)在治疗许多传统制剂无法治愈的疾病方面具有巨大的治疗潜力,但由于血清核酶的广泛代谢、带负电荷导致的生物膜屏障通透性低以及内体捕获等因素而受到限制。需要有效的递药载体来克服这些挑战,同时又不引起不必要的副作用。在这里,我们提出了一种相对简单的合成方案,以获得带正电荷、尺寸分布窄且表面修饰有 Tat 相关穿膜肽的金纳米粒子(AuNPs)。利用 TEM 和局域表面等离子体共振技术对 AuNPs 进行了表征。合成的 AuNPs 在体外实验中显示出低毒性,并且能够有效地与双链 siRNA 形成复合物。所得的递药载体用于转染分泌型碱性磷酸酶(SEAP)的 ARPE-19 细胞系中 siRNA 的细胞内递送。递送到细胞内的寡核苷酸保持完整,并对 SEAP 细胞的产生产生了显著的敲低效应。开发的材料可用于传递带负电荷的大分子,如反义寡核苷酸和各种 RNA,特别是用于视网膜色素上皮细胞的药物传递。