Wu Li, Ren Jinsong, Qu Xiaogang
Laboratory of Chemical Biology, Division of Biological Inorganic Chemistry, State Key laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China University of Chinese Academy of Sciences, Chinese Academy of Sciences, Beijing 100039, China.
Laboratory of Chemical Biology, Division of Biological Inorganic Chemistry, State Key laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China.
Nucleic Acids Res. 2014 Dec 1;42(21):e160. doi: 10.1093/nar/gku858. Epub 2014 Sep 23.
Nucleic acids have become a powerful tool in nanotechnology because of their controllable diverse conformational transitions and adaptable higher-order nanostructure. Using single-stranded DNA probes as the pore-caps for various target recognition, here we present an ultrasensitive universal electrochemical detection system based on graphene and mesoporous silica, and achieve sensitivity with all of the major classes of analytes and simultaneously realize DNA logic gate operations. The concept is based on the locking of the pores and preventing the signal-reporter molecules from escape by target-induced the conformational change of the tailored DNA caps. The coupling of 'waking up' gatekeeper with highly specific biochemical recognition is an innovative strategy for the detection of various targets, able to compete with classical methods which need expensive instrumentation and sophisticated experimental operations. The present study has introduced a new electrochemical signal amplification concept and also adds a new dimension to the function of graphene-mesoporous materials hybrids as multifunctional nanoscale logic devices. More importantly, the development of this approach would spur further advances in important areas, such as point-of-care diagnostics or detection of specific biological contaminations, and hold promise for use in field analysis.
由于核酸具有可控的多样构象转变和适应性的高阶纳米结构,它们已成为纳米技术中的一种强大工具。我们使用单链DNA探针作为用于各种目标识别的孔帽,在此展示了一种基于石墨烯和介孔二氧化硅的超灵敏通用电化学检测系统,并实现了对所有主要类别的分析物的灵敏度检测,同时还实现了DNA逻辑门操作。该概念基于通过目标诱导定制DNA帽的构象变化来锁定孔并防止信号报告分子逸出。将“唤醒”守门人与高度特异性的生化识别相结合是检测各种目标的一种创新策略,能够与需要昂贵仪器和复杂实验操作的传统方法相竞争。本研究引入了一种新的电化学信号放大概念,也为石墨烯-介孔材料杂化物作为多功能纳米级逻辑器件的功能增添了新的维度。更重要的是,这种方法的发展将推动即时诊断或特定生物污染物检测等重要领域的进一步进展,并有望用于现场分析。