Length-Controlled Nanofiber Micelleplexes as Efficient Nucleic Acid Delivery Vehicles

化学 核酸 脂质体 转染 纳米纤维 生物物理学 基因传递 纳米棒 纳米技术 动态光散射 生物化学 纳米颗粒 材料科学 生物 载体(分子生物学) 基因 重组DNA
作者
Steven T. G. Street,Josie Chrenek,Robert L. Harniman,Keiran Letwin,Judith Mantell,Ufuk Borucu,Stephanie M. Willerth,Ian Manners
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:144 (43): 19799-19812 被引量:1
标识
DOI:10.1021/jacs.2c06695
摘要

Micelleplexes show great promise as effective polymeric delivery systems for nucleic acids. Although studies have shown that spherical micelleplexes can exhibit superior cellular transfection to polyplexes, to date there has been no report on the effects of micelleplex morphology on cellular transfection. In this work, we prepared precision, length-tunable poly(fluorenetrimethylenecarbonate)-b-poly(2-(dimethylamino)ethyl methacrylate) (PFTMC16-b-PDMAEMA131) nanofiber micelleplexes and compared their properties and transfection activity to those of the equivalent nanosphere micelleplexes and polyplexes. We studied the DNA complexation process in detail via a range of techniques including cryo-transmission electron microscopy, atomic force microscopy, dynamic light scattering, and ζ-potential measurements, thereby examining how nanofiber micelleplexes form, as well the key differences that exist compared to nanosphere micelleplexes and polyplexes in terms of DNA loading and colloidal stability. The effects of particle morphology and nanofiber length on the transfection and cell viability of U-87 MG glioblastoma cells with a luciferase plasmid were explored, revealing that short nanofiber micelleplexes (length < ca. 100 nm) were the most effective delivery vehicle examined, outperforming nanosphere micelleplexes, polyplexes, and longer nanofiber micelleplexes as well as the Lipofectamine 2000 control. This study highlights the potential importance of 1D micelleplex morphologies for achieving optimal transfection activity and provides a fundamental platform for the future development of more effective polymeric nucleic acid delivery vehicles.

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