Ou Mei, Wang Xu-Li, Xu Rongzuo, Chang Chien-Wen, Bull David A, Kim Sung Wan
Center for Controlled Chemical Delivery, Department of Pharmaceutics and Pharmaceutical Chemistry, 421 Wakara Way, University of Utah, Salt Lake City, UT 84112, USA
Bioconjug Chem. 2008 Mar;19(3):626-33. doi: 10.1021/bc700397x. Epub 2008 Mar 4.
Novel biodegradable poly(disulfide amine)s with defined structure, high transfection efficiency, and low cytotoxicity were designed and synthesized as nonviral gene delivery carriers. Michael addition between N, N'-cystaminebisacrylamide (CBA) and three N-Boc protected diamines ( N-Boc-1,2-diaminoethane, N-Boc-1,4-diaminobutane, and N-Boc-1,6-diaminohexane) followed by N-Boc deprotection under acidic condition resulted in final cationic polymers with disulfide bonds, tertiary amine groups in main chains, and pendant primary amine groups in side chains. Polymer structures were confirmed by 1H NMR, and their molecular weights were in the range 3.3-4.7 kDa with narrow polydispersity (1.12-1.17) as determined by size exclusion chromatography (SEC). Acid-base titration assay showed that the poly(disulfide amine)s possessed superior buffering capacity to branched PEI 25 kDa in the pH range 7.4-5.1, which may facilitate the escape of DNA from the endosomal compartment. Gel retardation assay demonstrated that significant polyplex dissociation was observed in the presence of 5.0 mM DTT within 1 h, suggesting rapid DNA release in the reduction condition such as cytoplasm due to the cleavage of disulfide bonds. Genetic transfections mediated by these poly(disulfide amine)s were side-chain spacer length dependent. The poly(disulfide amine) with a hexaethylene spacer, poly(CBA-DAH), had comparable transfection efficiency to bPEI 25 kDa in the tested cell lines, i.e., 293T cells, Hela cells, and NIH3T3 cells. This same poly(disulfide amine) mediated 7-fold higher luciferase expression than bPEI 25 kDa in C2C12 cells (mouse myoblast cell line), a cell line difficult to transfect with many cationic polymers. Furthermore, MTT assay indicated that all three poly(disulfide amine)s/pDNA polyplexes were significantly less toxic than bPEI/pDNA complexes.
设计并合成了具有明确结构、高转染效率和低细胞毒性的新型可生物降解聚(二硫代胺)作为非病毒基因传递载体。N,N'-胱胺双丙烯酰胺(CBA)与三种N-Boc保护的二胺(N-Boc-1,2-二氨基乙烷、N-Boc-1,4-二氨基丁烷和N-Boc-1,6-二氨基己烷)之间进行迈克尔加成反应,然后在酸性条件下进行N-Boc脱保护,得到了具有二硫键、主链上有叔胺基团和侧链上有伯胺基团的最终阳离子聚合物。通过1H NMR确认了聚合物结构,通过尺寸排阻色谱(SEC)测定其分子量在3.3-4.7 kDa范围内,多分散性较窄(1.12-1.17)。酸碱滴定分析表明,聚(二硫代胺)在7.4-5.1的pH范围内具有比支链PEI 25 kDa更好的缓冲能力,这可能有助于DNA从内体区室中逃逸。凝胶阻滞分析表明,在5.0 mM DTT存在下1小时内观察到明显的多聚体解离,这表明由于二硫键的断裂,在诸如细胞质等还原条件下DNA会快速释放。这些聚(二硫代胺)介导的基因转染依赖于侧链间隔长度。具有六亚乙基间隔基的聚(二硫代胺),即聚(CBA-DAH),在测试的细胞系(即293T细胞、Hela细胞和NIH3T3细胞)中具有与bPEI 25 kDa相当的转染效率。在C2C12细胞(小鼠成肌细胞系,一种难以被许多阳离子聚合物转染的细胞系)中,这种相同的聚(二硫代胺)介导的荧光素酶表达比bPEI 25 kDa高7倍。此外,MTT分析表明,所有三种聚(二硫代胺)/pDNA多聚体的毒性均明显低于bPEI/pDNA复合物。