Cancer Metastasis Alert and Prevention Center, Pharmaceutical Photocatalysis of State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fujian Provincial Key Laboratory of Cancer Metastasis Chemoprevention and Chemotherapy, Fuzhou University, Fuzhou 350116, China.
Cancer Metastasis Alert and Prevention Center, Pharmaceutical Photocatalysis of State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fujian Provincial Key Laboratory of Cancer Metastasis Chemoprevention and Chemotherapy, Fuzhou University, Fuzhou 350116, China.
Biomaterials. 2017 Mar;120:57-65. doi: 10.1016/j.biomaterials.2016.12.018. Epub 2016 Dec 22.
Facile assembly of intelligent DNA nanoobjects with the ability to exert in situ visualization of intracellular microRNAs (miRNAs) has long been concerned in the fields of DNA nanotechnology and basic medical study. Here, we present a driving primer (DP)-triggered polymerization-mediated metastable assembly (PMA) strategy to prepare a well-ordered metastable DNA nanoarchitecture composed of only two hairpin probes (HAPs), which has never been explored by assembly methods. Its structural features and functions are characterized by atomic force microscope (AFM) and gel electrophoresis. Even if with a metastable molecular structure, this nanoarchitecture is relatively stable at physiological temperature. The assembly strategy can be expanded to execute microRNA-21 (miRNA-21) in situ imaging inside cancer cells by labelling one of the HAPs with fluorophore and quencher. Compared with the conventional fluorescence probe-based in situ hybridization (FISH) technique, confocal images revealed that the proposed DNA nanoassembly can not only achieve greatly enhanced imaging effect within cancer cells, but also reflect the miRNA-21 expression level sensitively. We believe that the easily constructed DNA nanoarchitecture and in situ profiling strategy are significant progresses in DNA assembly and molecule imaging in cells.
具有原位可视化细胞内 microRNAs (miRNAs) 能力的智能 DNA 纳米结构的简便组装长期以来一直受到 DNA 纳米技术和基础医学研究领域的关注。在这里,我们提出了一种驱动引物 (DP) 触发聚合介导的亚稳组装 (PMA) 策略,用于制备仅由两个发夹探针 (HAPs) 组成的有序亚稳 DNA 纳米结构,这是以前的组装方法从未探索过的。通过原子力显微镜 (AFM) 和凝胶电泳对其结构特征和功能进行了表征。即使具有亚稳的分子结构,这种纳米结构在生理温度下也相对稳定。该组装策略可以通过标记其中一个 HAP 与荧光团和猝灭剂来扩展,以执行癌细胞内 microRNA-21 (miRNA-21) 的原位成像。与传统的基于荧光探针的原位杂交 (FISH) 技术相比,共聚焦图像显示,所提出的 DNA 纳米组装不仅可以在癌细胞内实现大大增强的成像效果,还可以敏感地反映 miRNA-21 的表达水平。我们相信,这种易于构建的 DNA 纳米结构和原位分析策略是 DNA 组装和细胞内分子成像的重要进展。