School of Chemistry and Chemical Engineering, Shandong University, 250100 Jinan, PR China.
Bioconjug Chem. 2012 Apr 18;23(4):734-9. doi: 10.1021/bc200537g. Epub 2012 Mar 15.
A novel cascade fluorescence signal amplification strategy based on the rolling circle amplification (RCA)-aided assembly of fluorescent DNA nanotags as fluorescent labels and multiplex binding of the biotin-streptavidin system was proposed for detection of protein target at ultralow concentration. In the strategy, fluorescent DNA nanotags are prepared relying on intercalating dye arrays assembled on nanostructured DNA templates by intercalation between base pairs. The RCA product containing tandem-repeat sequences could serve as an excellent template for periodic assembly of fluorescent DNA nanotags, which were presented per protein recognition event to numerous fluorescent DNA nanotags for assay readout. Both the RCA and the multiplex binding system showed remarkable amplification efficiency, very little nonspecific adsorption, and low background signal. Using human IgG as a model protein, the designed strategy was successfully demonstrated for the ultrasensitive detection of protein target. The results revealed that the strategy exhibited a dynamic response to human IgG over a three-decade concentration range from 1.0 pM to 1.0 fM with a limit of detection as low as 0.9 fM. By comparison with the assay of multiple labeling antibodies with the dye/DNA conjugate, the limit of detection was improved by 4 orders. The designed signal amplification strategy would hold great promise as a powerful tool to be applied for the ultrasensitive detection of target protein in immunoassay.
基于滚环扩增(RCA)辅助荧光 DNA 纳米标签组装作为荧光标记物和生物素-链霉亲和素系统的多重结合的新型级联荧光信号放大策略,被提出用于检测超低浓度的蛋白质靶标。在该策略中,荧光 DNA 纳米标签是通过碱基对之间的嵌入,在纳米结构 DNA 模板上组装嵌入染料阵列来制备的。包含串联重复序列的 RCA 产物可用作周期性组装荧光 DNA 纳米标签的极好模板,每个蛋白质识别事件都会呈现出许多荧光 DNA 纳米标签,用于测定读出。RCA 和多重结合系统均表现出显著的放大效率、很少的非特异性吸附和低背景信号。用人 IgG 作为模型蛋白,成功地证明了该设计策略可用于超灵敏检测蛋白质靶标。结果表明,该策略在 1.0 pM 至 1.0 fM 的三个数量级浓度范围内对人 IgG 表现出动态响应,检测限低至 0.9 fM。与使用染料/DNA 缀合物的多个标记抗体的测定相比,检测限提高了 4 个数量级。该设计的信号放大策略有望成为应用于免疫分析中超敏检测目标蛋白的强大工具。