School of Pharmacy, Faculty of Science, University of Nottingham Malaysia Campus, Jalan Broga, 43500, Semenyih, Selangor, Malaysia.
School of Pharmacy, University of Nottingham, University Park, Nottingham, NG72RD, United Kingdom.
Anal Chim Acta. 2018 Jun 20;1010:62-68. doi: 10.1016/j.aca.2018.01.012. Epub 2018 Jan 20.
Single strand DNA (ssDNA) chimeras consisting of a silver nanoclusters-nucleating sequence (NC) and an aptamer are widely employed to synthesize functional silver nanoclusters (AgNCs) for sensing purpose. Despite its simplicity, this chimeric-templated AgNCs often leads to undesirable turn-off effect, which may suffer from false positive signals caused by interference. In our effort to elucidate how the relative position of NC and aptamer affects the fluorescence behavior and sensing performance, we systematically formulated these NC and aptamer regions at different position in a DNA chimera. Using adenosine aptamer as a model, we tested the adenosine-induced optical response of each design. We also investigated the effect of linker region connecting NC and aptamer, as well as different NC sequence on the sensing performance. We concluded that locating NC sequence at 5'-end exhibited the best response, with immediate fluorescence enhancement observed over a wide linear range (1-2500 μM). Our experimental findings help to explain the emission behavior and sensing performance of chimeric conjugates of AgNCs, providing an important means to formulate a better aptasensor.
单链 DNA(ssDNA)嵌合体由银纳米簇成核序列(NC)和适体组成,广泛用于合成用于传感目的的功能性银纳米簇(AgNCs)。尽管这种方法简单,但这种嵌合体模板 AgNCs 通常会导致不理想的关闭效应,这可能会受到干扰引起的假阳性信号的影响。在我们努力阐明 NC 和适体的相对位置如何影响荧光行为和传感性能时,我们系统地在 DNA 嵌合体的不同位置设计了这些 NC 和适体区域。我们使用腺嘌呤适体作为模型,测试了每个设计的腺嘌呤诱导的光学响应。我们还研究了连接 NC 和适体的连接区域以及不同 NC 序列对传感性能的影响。我们得出结论,将 NC 序列定位在 5'-端表现出最佳的响应,在较宽的线性范围内(1-2500μM)观察到立即荧光增强。我们的实验结果有助于解释 AgNCs 嵌合体的发射行为和传感性能,为构建更好的适体传感器提供了重要手段。