Namvar Ali, Bolhassani Azam, Khairkhah Niloofardokht, Motevalli Fatemeh
Department of Hepatitis and AIDS, Pasteur Institute of Iran, Tehran, Iran.
Biopolymers. 2015 Jul;103(7):363-75. doi: 10.1002/bip.22638.
Delivery of the macromolecules including DNA, miRNA, and antisense oligonucleotides is typically mediated by carriers due to the large size and negative charge. Different physical (e.g., gene gun or electroporation), and chemical (e.g., cationic polymer or lipid) vectors have been already used to improve the efficiency of gene transfer. Polymer-based DNA delivery systems have attracted special interest, in particular via intravenous injection with many intra- and extracellular barriers. The recent progress has shown that stimuli-responsive polymers entitled as multifunctional nucleic acid vehicles can act to target specific cells. These nonviral carriers are classified by the type of stimulus including reduction potential, pH, and temperature. Generally, the physicochemical characterization of DNA-polymer complexes is critical to enhance the transfection potency via protection of DNA from nuclease digestion, endosomal escape, and nuclear localization. The successful clinical applications will depend on an exact insight of barriers in gene delivery and development of carriers overcoming these barriers. Consequently, improvement of novel cationic polymers with low toxicity and effective for biomedical use has attracted a great attention in gene therapy. This article summarizes the main physicochemical and biological properties of polyplexes describing their gene transfection behavior, in vitro and in vivo. In this line, the relative efficiencies of various cationic polymers are compared.
由于大分子(包括DNA、miRNA和反义寡核苷酸)尺寸较大且带负电荷,其递送通常由载体介导。不同的物理(如基因枪或电穿孔)和化学(如阳离子聚合物或脂质)载体已被用于提高基因转移效率。基于聚合物的DNA递送系统尤其受到关注,特别是在存在许多细胞内和细胞外屏障的静脉注射途径中。最近的进展表明,被称为多功能核酸载体的刺激响应性聚合物可作用于靶向特定细胞。这些非病毒载体按刺激类型分类,包括还原电位、pH值和温度。一般来说,DNA-聚合物复合物的物理化学特性对于通过保护DNA免受核酸酶消化、内体逃逸和核定位来提高转染效力至关重要。成功的临床应用将取决于对基因递送中屏障的准确认识以及克服这些屏障的载体的开发。因此,开发具有低毒性且对生物医学用途有效的新型阳离子聚合物在基因治疗中引起了极大关注。本文总结了多聚体的主要物理化学和生物学特性,描述了它们在体外和体内的基因转染行为。在此方面,比较了各种阳离子聚合物的相对效率。