School of Pharmaceutical Sciences, Jilin University, Changchun, Jilin 130012, China.
CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing 100190, China.
J Am Chem Soc. 2021 Dec 1;143(47):19893-19900. doi: 10.1021/jacs.1c09472. Epub 2021 Nov 16.
DNA origami technique provides a programmable way to construct nanostructures with arbitrary shapes. The dimension of assembled DNA origami, however, is usually limited by the length of the scaffold strand. Herein, we report a general strategy to efficiently organize multiple DNA origami tiles to form super-DNA origami using a flexible and covalent-bound branched DNA structure. In our design, the branched DNA structures (B: with a certain number of 2-6 branches) are synthesized by a copper-free click reaction. Equilateral triangular DNA origamis with different numbers of capture strands (T: T, T, and T) are constructed as the coassembly tiles. After hybridization with the branched DNA structures, the super-DNA origami (up to 13 tiles) can be efficiently ordered in the predesigned patterns. Compared with traditional DNA junctions (J: J-J, as control groups) assembled by base pairing between several DNA strands, a higher yield and more compact structures are obtained using our strategy. The highly ordered and discrete DNA origamis can further precisely organize gold nanoparticles into different patterns. This rationally developed DNA origami ordering strategy based on the flexible and covalent-bound branched DNA structure presents a new avenue for the construction of sophisticated DNA architectures with larger molecular weights.
DNA 折纸技术为构建具有任意形状的纳米结构提供了一种可编程的方法。然而,组装的 DNA 折纸的尺寸通常受到支架链长度的限制。在此,我们报告了一种使用灵活的共价键合分支 DNA 结构有效地组织多个 DNA 折纸瓦片以形成超 DNA 折纸的通用策略。在我们的设计中,分支 DNA 结构(B:具有一定数量的 2-6 个分支)通过无铜点击反应合成。构建了具有不同捕获链数量的等边三角形 DNA 折纸(T:T、T 和 T)作为共组装瓦片。与分支 DNA 结构杂交后,可以在预定图案中有效地对超 DNA 折纸(多达 13 个瓦片)进行有序排列。与通过几个 DNA 链之间的碱基配对组装的传统 DNA 连接(J:J-J,作为对照组)相比,使用我们的策略可以获得更高的产率和更紧凑的结构。高度有序和离散的 DNA 折纸可以进一步将金纳米粒子精确地组织成不同的图案。这种基于灵活的共价键合分支 DNA 结构的合理开发的 DNA 折纸排序策略为构建具有更大分子量的复杂 DNA 结构提供了新途径。