核酸
纳米技术
纳米颗粒
纳米医学
生物分子
模板
寡核苷酸
胶体金
材料科学
化学
自组装
共轭体系
三聚氰胺
组合化学
DNA纳米技术
DNA折纸
胶体
表面改性
DNA
光热治疗
生物结合
树枝状大分子
胶体晶体
作者
Chaojian Chen,Taokun Luo,Ye Zhang,Xiaowei Liu,Hanwen Zhang,Chad A. Mirkin
摘要
ABSTRACT Spherical nucleic acids (SNAs), structures consisting of a nanoparticle core chemically modified with a dense shell of nucleic acids, are central to the fields of structural nanomedicine and colloidal crystal engineering with DNA. However, the synthetic methods used to prepare them often require different oligonucleotide immobilization chemistries for each type of core. Here, a general strategy to construct SNAs using metal–phenolic (MP) coatings is introduced. The polymeric shell formed through coordination bonds between polyphenols and metal ions (e.g., Fe 3+ ) can be used to modify the surfaces of a wide variety of particles, spanning a diverse range of sizes, shapes, compositions, and surface charges (e.g., gold spheres and cubes, silica, polystyrene, and melamine resin). Importantly, these shells, regardless of nanoparticle core, can be conjugated to thiolated DNA via Michael addition chemistry. MP‐SNAs retain many of the hallmark properties of conventional SNAs, including enhanced cellular uptake, and serve as versatile building blocks for the programmable assembly of a diverse library of nanoparticles and microparticles into larger and more sophisticated superstructures.
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