Lin Xiaoyan, Ivanov Aleksandar P, Edel Joshua B
Department of Chemistry , Imperial College London , South Kensington , London SW7 2AZ , UK . Email:
Chem Sci. 2017 May 1;8(5):3905-3912. doi: 10.1039/c7sc00415j. Epub 2017 Mar 20.
Single molecule detection methods, such as nanopore sensors have found increasing importance in applications ranging from gaining a better understanding of biophysical processes to technology driven solutions such as DNA sequencing. However, challenges remain especially in relation to improving selectivity to probe specific targets or to alternatively enable detection of smaller molecules such as small-sized proteins with a sufficiently high signal-to-noise ratio. In this article, we propose a solution to these technological challenges by using DNA aptamer-modified gold nanoparticles (AuNPs) that act as a molecular carrier through the nanopore sensor. We show that this approach offers numerous advantages including: high levels of selectivity, efficient capture from a complex mixture, enhanced signal, minimized analyte-sensor surface interactions, and finally can be used to enhance the event detection rate. This is demonstrated by incorporating a lysozyme binding aptamer to a 5 nm AuNP carrier to selectively probe lysozyme within a cocktail of proteins. We show that nanopores can reveal sub-complex molecular information, by discriminating the AuNP from the protein analyte, indicating the potential use of this technology for single molecule analysis of different molecular analytes specifically bound to AuNP.
单分子检测方法,如纳米孔传感器,在从更好地理解生物物理过程到DNA测序等技术驱动解决方案的各种应用中已变得越来越重要。然而,挑战依然存在,尤其是在提高对特定目标探针的选择性方面,或者在以足够高的信噪比检测小分子(如小尺寸蛋白质)方面。在本文中,我们提出了一种解决这些技术挑战的方案,即使用DNA适配体修饰的金纳米颗粒(AuNP),其作为分子载体通过纳米孔传感器。我们表明,这种方法具有许多优点,包括:高度的选择性、从复杂混合物中有效捕获、增强信号、最小化分析物与传感器表面的相互作用,最后可用于提高事件检测率。通过将溶菌酶结合适配体整合到5纳米的AuNP载体中,在蛋白质混合物中选择性探测溶菌酶,证明了这一点。我们表明,纳米孔可以通过区分AuNP和蛋白质分析物来揭示亚复杂分子信息,这表明该技术在对特异性结合到AuNP的不同分子分析物进行单分子分析方面具有潜在用途。