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Design and Biophysical Characterization of Novel Polycationic epsilon-Peptides for DNA Compaction and Delivery

机译:用于DNA压实和递送的新型聚阳离子ε肽的设计和生物物理表征

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Design and solid-phase synthesis of novel and chemically defined linear and branched epsilon-oligo(L-lysines)(denoted epsilon-Kn,where n is the number of lysine residues)and their alpha-substituted homologues(epsilon-(R)K10,epsilon-(Y)K10,epsilon-(L)K10,epsilon-(YR)K10,and epsilon-(LYR)K10)for DNA compaction and delivery are reported.The ability to condense viral(T2 and T4)and plasmid DNA as well as the size of epsilon-peptide DNA complexes under different conditions was investigated with static and dynamic light scattering,isothermal titration calorimetry,and fluorescence microscopy.Nanoparticle diameters varied from 100 to 150 and 375 to 550 nm for plasmid and T4 DNA peptide complexes,respectively.Smaller sizes were observed for oligo(L-lysines)compared to alpha-poly(L-lysine).The linear epsilon-oligo-lysines are less toxic and epsilon-(LYR)K10 showed higher transfection efficiency in HeLa cells than corresponding controls.The results also demonstrate that with a branched design having pendent groups of short alpha-oligopeptides,improved transfection can be achieved.This study supports the hypothesis that available alpha-oligolysine derived systems would potentially have more favorable delivery properties if they are based instead on epsilon-oligo(L-lysines).The flexible design and unambiguous synthesis that enables variation of pendent groups holds promise for optimization of such epsilon-peptides to achieve improved DNA compaction and delivery.
机译:设计和固相合成新的化学定义的线性和支化的ε-低聚(L-赖氨酸)(表示ε-Kn,其中n为赖氨酸残基的数目)及其α-取代的同系物(ε-K10)报道了用于DNA压缩和递送的,ε-(Y)K10,ε-(L)K10,ε-(YR)K10和epsilon-(LYR)K10)的浓缩病毒(T2和T4)和质粒的能力。通过静态和动态光散射,等温滴定热法和荧光显微镜研究了不同条件下的DNA以及ε-肽DNA复合物的大小。质粒和T4 DNA肽的纳米粒径为100-150 nm和375-550 nm。分别观察到寡聚(L-赖氨酸)与α-聚(L-赖氨酸)相比体积更小。线性ε-聚赖氨酸毒性较低,ε-(LYR)K10在HeLa细胞中的转染效率更高比相应的控件。结果还表明,具有分支设计的havi将短的α-寡肽短肽连接,可以改善转染效果。本研究支持以下假设:如果现有的α-寡聚赖氨酸衍生系统基于ε-寡聚(L-赖氨酸),则可能具有更有利的递送特性。灵活的设计和能够使侧基发生变化的明确合成方法,有望使此类ε-肽最优化,以实现改善的DNA压缩和递送。

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