Byrne Mark, Victory Danielle, Hibbitts Alan, Lanigan Martin, Heise Andreas, Cryan Sally-Ann
School of Chemical Sciences, Dublin City University, Glasnevin, Dublin 9, Ireland.
Biomater Sci. 2013 Dec 29;1(12):1223-1234. doi: 10.1039/c3bm60123d. Epub 2013 Aug 7.
A series of well-defined star-shaped polypeptides were successfully synthesised by the ring opening polymerisation (ROP) of the N-carboxyanhydride (NCA) of ε-carbobenzyloxy-l-lysine (ZLL) using a range of generations of polypropylene imine (PPI) dendrimers as multifunctional initiators. The monomer feed ratio and dendrimer generation were varied to afford a series of polypeptide dendrimer hybrids with superior structural versatility and functionality. Subsequent protecting group removal yielded star-shaped poly(lysine) of controlled variation in polypeptide chain length and arm multiplicity. Star-shaped PLL polymers were used to prepare pDNA and siRNA to form "polyplexes" to determine their ability to complex different nucleic acid cargoes and were compared with linear PLL polyplex controls. Significant differences in size and surface charge were seen between star-shaped PLL polyplexes and linear PLL polyplexes for both cargoes. The star-shaped polypeptides were capable of more effective complexation of both nucleic acids at low N/P ratios compared to linear PLL as evidenced by zeta potential and electrophoretic data. This was particularly evident in siRNA polyplexes as linear PLL failed to completely complex siRNA into nanocomplexes of appropriate size for cell transfection i.e. <200 nm in size, while star poly(lysine) formed siRNA polyplexes <100 nm at certain N/P ratios, albeit strongly dependent on the particular molecular weight and architecture, as analysed by dynamic light scattering (DLS). Atomic force microscopy (AFM) identified discrete spherically shaped polyplexes for all star-shaped polypeptide-based polyplexes while linear PLL formed elongated irregular shaped complexes. This difference in morphology may go some way towards explaining the 300-fold increase in luciferase expression seen for star-shaped PLL polyplexes G5(64)-PLL compared to linear PLL pGLuc polyplexes in epithelial cells. Each of the PPI-PLL polymers appeared to be capable of protecting the nucleic acid cargoes from degradation by the relevant nuclease enzyme as effectively as the positive control polyethyleneimine (PEI) polyplexes. Overall the promising nucleic acid complexation, sizing, morphology and protection capacity of two different genetic "cargoes" highlight the potential of polypeptide dendrimer hybrids as gene delivery vectors.
使用一系列不同代数的聚丙烯亚胺(PPI)树枝状大分子作为多功能引发剂,通过ε-苄氧羰基-L-赖氨酸(ZLL)的N-羧基环内酸酐(NCA)的开环聚合(ROP)成功合成了一系列结构明确的星形多肽。改变单体进料比和树枝状大分子的代数,得到了一系列具有卓越结构多样性和功能性的多肽树枝状大分子杂化物。随后去除保护基团,得到了多肽链长度和臂数可控变化的星形聚赖氨酸。星形PLL聚合物用于制备pDNA和siRNA以形成“多聚体”,以确定它们与不同核酸货物复合的能力,并与线性PLL多聚体对照进行比较。对于两种货物,星形PLL多聚体和线性PLL多聚体在尺寸和表面电荷上均存在显著差异。由ζ电位和电泳数据证明,与线性PLL相比,星形多肽在低N/P比下能够更有效地复合两种核酸。这在siRNA多聚体中尤为明显,因为线性PLL未能将siRNA完全复合成适合细胞转染的尺寸(即尺寸<200 nm)的纳米复合物,而星形聚赖氨酸在某些N/P比下形成了尺寸<100 nm的siRNA多聚体,尽管这强烈依赖于特定的分子量和结构,通过动态光散射(DLS)分析。原子力显微镜(AFM)确定了所有基于星形多肽的多聚体的离散球形多聚体,而线性PLL形成了细长的不规则形状的复合物。这种形态上的差异可能在一定程度上解释了与上皮细胞中的线性PLL pGLuc多聚体相比,星形PLL多聚体G5(64)-PLL的荧光素酶表达增加了300倍。每种PPI-PLL聚合物似乎都能够像阳性对照聚乙烯亚胺(PEI)多聚体一样有效地保护核酸货物不被相关核酸酶降解。总体而言,两种不同遗传“货物”的有前景的核酸复合、尺寸确定、形态和保护能力突出了多肽树枝状大分子杂化物作为基因传递载体的潜力。