Meade Bryan R, Dowdy Steven F
Howard Hughes Medical Institute, and Department of Cellular & Molecular Medicine, UCSD School of Medicine, 9500 Gilman Drive, La Jolla, CA 92093-0686, USA.
Adv Drug Deliv Rev. 2008 Mar 1;60(4-5):530-6. doi: 10.1016/j.addr.2007.10.004. Epub 2007 Oct 22.
The major limitation in utilizing information rich macromolecules for basic science and therapeutic applications is the inability of these large molecules to readily diffuse across the cellular membrane. While this restriction represents an efficient defense system against cellular penetration of unwanted foreign molecules and thus a crucial component of cell survival, overcoming this cellular characteristic for the intracellular delivery of macromolecules has been the focus of a large number of research groups worldwide. Recently, with the discovery of RNA interference, many of these groups have redirected their attention and have applied previously characterized cell delivery methodologies to synthetic short interfering RNA duplexes (siRNA). Protein transduction domain and cell penetrating peptides have been shown to enhance the delivery of multiple types of macromolecular cargo including peptides, proteins and antisense oligonucleotides and are now being utilized to enhance the cellular uptake of siRNA molecules. The dense cationic charge of these peptides that is critical for interaction with cell membrane components prior to internalization has also been shown to readily package siRNA molecules into stable nanoparticles that are capable of traversing the cell membrane. This review discusses the recent advances in noncovalent packaging of siRNA molecules with cationic peptides and the potential for the resulting complexes to successfully induce RNA interference within both in vitro and in vivo settings.
在基础科学和治疗应用中利用富含信息的大分子的主要限制在于,这些大分子无法轻易穿过细胞膜。虽然这种限制代表了一种针对不需要的外来分子细胞穿透的有效防御系统,因此是细胞存活的关键组成部分,但克服这种细胞特性以实现大分子的细胞内递送一直是全球众多研究团队的重点。最近,随着RNA干扰的发现,许多这些团队重新调整了注意力,并将先前表征的细胞递送方法应用于合成短干扰RNA双链体(siRNA)。蛋白质转导结构域和细胞穿透肽已被证明可增强多种类型大分子货物的递送,包括肽、蛋白质和反义寡核苷酸,现在正被用于增强siRNA分子的细胞摄取。这些肽的密集阳离子电荷对于内化前与细胞膜成分的相互作用至关重要,也已被证明可将siRNA分子轻松包装成能够穿越细胞膜的稳定纳米颗粒。本文综述了阳离子肽与siRNA分子非共价包装的最新进展,以及所得复合物在体外和体内环境中成功诱导RNA干扰的潜力。