State Key Laboratory of Medicinal Chemical Biology, Tianjin Key Laboratory of Biosensing and Molecular Recognition, Research Centre for Analytical Sciences, College of Chemistry, Nankai University, Tianjin, 300071, PR China; School of Pharmacy, Binzhou Medical University, Yantai, Shandong, 264003, PR China.
State Key Laboratory of Medicinal Chemical Biology, Tianjin Key Laboratory of Biosensing and Molecular Recognition, Research Centre for Analytical Sciences, College of Chemistry, Nankai University, Tianjin, 300071, PR China.
Talanta. 2022 Jan 1;236:122846. doi: 10.1016/j.talanta.2021.122846. Epub 2021 Sep 4.
Simultaneous detection of multiple microRNAs (miRNAs) with high sensitivity can give accurate and reliable information for clinical applications. By uniformly anchoring hairpin probes on the surface of DNA nanolantern, a three-dimensional DNA nanostructure contains abundant and adjustable modification sites, highly integrated DNA nanoprobes were designed and developed as catalytic hairpin assembly (CHA)-based signal amplifiers for enzyme-free signal amplification detection of target miRNAs. The nanolantern-based CHA (NLC) amplifiers, which were facilely prepared via a simple "one-pot" annealing method, showed enhanced biostability, improved cell internalization efficiency, accelerated CHA reaction kinetics, and increased signal amplification capability compared to the single-stranded DNA hairpin probes used in traditional CHA reaction. By co-assembling multiple hairpin probes on a DNA nanolantern surface, as-prepared NLC amplifiers were demonstrated to work well for highly sensitive and specific imaging, expression level fluctuation analysis of two miRNAs in living cells, and miRNAs-guided tumor imaging in living mice. The proposed DNA nanolantern-based nanoamplifier strategy might provide a feasible way to promote the cellular and in vivo applications of nucleic acid probes.
同时检测多个 microRNAs(miRNAs)具有高灵敏度,可以为临床应用提供准确可靠的信息。通过在 DNA 纳米灯笼表面均匀固定发夹探针,三维 DNA 纳米结构包含丰富且可调的修饰位点,设计并开发了高度集成的 DNA 纳米探针作为无酶信号放大检测靶标 miRNAs 的基于催化发夹组装(CHA)的信号放大器。基于纳米灯笼的 CHA(NLC)放大器可通过简单的“一锅”退火方法轻松制备,与传统 CHA 反应中使用的单链 DNA 发夹探针相比,具有增强的生物稳定性、提高的细胞内化效率、加速的 CHA 反应动力学和增强的信号放大能力。通过在 DNA 纳米灯笼表面共组装多个发夹探针,所制备的 NLC 放大器可用于高度敏感和特异性成像、活细胞中两种 miRNAs 的表达水平波动分析以及活小鼠中 miRNA 引导的肿瘤成像。所提出的基于 DNA 纳米灯笼的纳米放大器策略可能为促进核酸探针的细胞和体内应用提供一种可行的方法。