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在室温下以非常规梯状排列轻松构建DNA四面体。

Facile construction of a DNA tetrahedron in unconventional ladder-like arrangements at room temperature.

作者信息

Dai Ziwen, Leung Hoi Man, Gao Qi, Wang Fei, Wong Sze Wing, Liu Ling Sum, Au Yu Ju, Lai King Wai Chiu, Lo Pik Kwan

机构信息

Department of Chemistry, City University of Hong Kong Tat Chee Avenue Kowloon Tong Hong Kong SAR

Department of Biomedical Engineering, City University of Hong Kong Tat Chee Avenue Kowloon Tong Hong Kong SAR.

出版信息

Nanoscale Adv. 2018 Dec 27;1(3):1240-1248. doi: 10.1039/c8na00323h. eCollection 2019 Mar 12.

Abstract

A DNA tetrahedron as the most classical and simplest three-dimensional DNA nanostructure has been widely utilized in biomedicine and biosensing. However, the existing assembly approaches usually require harsh thermal annealing conditions, involve the formation of unwanted by-products, and have poor size control. Herein, a facile strategy to fabricate a discrete DNA tetrahedron as a single, thermodynamically stable product in a quantitative yield at room temperature is reported. This system does not require a DNA trigger or thermal annealing treatment to initiate self-assembly. This DNA tetrahedron was made of three chemically ligated triangular-shaped DNAs in unconventional ladder-like arrangements, with measured heights of ∼4.16 ± 0.04 nm, showing extra protections for enzymatic degradation in biological environment. They show substantial cellular uptake in different cell lines temperature, energy-dependent and clathrin-mediated endocytosis pathways. These characteristics allow our DNA tetrahedron to be used as vehicles for the delivery of very small and temperature-sensitive cargos. This novel assembly strategy developed for DNA tetrahedra could potentially be extended to other highly complex polyhedra; this indicated its generalizability.

摘要

作为最经典、最简单的三维DNA纳米结构,DNA四面体已在生物医学和生物传感中得到广泛应用。然而,现有的组装方法通常需要苛刻的热退火条件,会产生不需要的副产物,且尺寸控制不佳。在此,我们报道了一种简便的策略,可在室温下以定量产率制备离散的DNA四面体,使其成为单一的、热力学稳定的产物。该系统无需DNA引发剂或热退火处理即可启动自组装。这种DNA四面体由三个化学连接的三角形DNA以非常规的梯状排列构成,测得高度约为4.16±0.04纳米,在生物环境中对酶促降解具有额外的保护作用。它们在不同细胞系中表现出大量的细胞摄取,通过温度、能量依赖和网格蛋白介导的内吞途径进入细胞。这些特性使我们的DNA四面体能够用作递送非常小的、对温度敏感的货物的载体。为DNA四面体开发的这种新型组装策略有可能扩展到其他高度复杂的多面体;这表明了其通用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7baf/9473169/b7e6753b0397/c8na00323h-s1.jpg

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