Department of Chemistry and Center for NanoScience, Ludwig-Maximilians-Universität München, München, Germany.
Institute for Physical and Theoretical Chemistry - NanoBioScience and Braunschweig Integrated Centre of Systems Biology (BRICS), Technische Universität Braunschweig, Braunschweig, Germany.
Nat Commun. 2021 Feb 11;12(1):950. doi: 10.1038/s41467-021-21238-9.
The advent of highly sensitive photodetectors and the development of photostabilization strategies made detecting the fluorescence of single molecules a routine task in many labs around the world. However, to this day, this process requires cost-intensive optical instruments due to the truly nanoscopic signal of a single emitter. Simplifying single-molecule detection would enable many exciting applications, e.g., in point-of-care diagnostic settings, where costly equipment would be prohibitive. Here, we introduce addressable NanoAntennas with Cleared HOtSpots (NACHOS) that are scaffolded by DNA origami nanostructures and can be specifically tailored for the incorporation of bioassays. Single emitters placed in NACHOS emit up to 461-fold (average of 89 ± 7-fold) brighter enabling their detection with a customary smartphone camera and an 8-US-dollar objective lens. To prove the applicability of our system, we built a portable, battery-powered smartphone microscope and successfully carried out an exemplary single-molecule detection assay for DNA specific to antibiotic-resistant Klebsiella pneumonia on the road.
高灵敏度光电探测器的出现和光稳定策略的发展使得在世界各地的许多实验室中,检测单个分子的荧光成为常规任务。然而,直到今天,由于单个发射器的真正纳米级信号,这个过程仍然需要成本高昂的光学仪器。简化单分子检测将能够实现许多令人兴奋的应用,例如在即时诊断环境中,昂贵的设备将是不可行的。在这里,我们引入了由 DNA 折纸纳米结构支撑的寻址纳米天线,带有清除热点(NACHOS),可以专门定制用于生物测定的整合。放置在 NACHOS 中的单个发射器的发射强度高达 461 倍(平均 89 ± 7 倍),从而可以使用常规的智能手机摄像头和 8 美元的物镜进行检测。为了证明我们系统的适用性,我们构建了一个便携式、电池供电的智能手机显微镜,并成功地在旅途中进行了一个示例性的针对抗药性肺炎克雷伯菌的 DNA 的单分子检测分析。