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基于DNA框架纳米尺导向的表面荧光增强作为一种用于检测微小RNA的传感平台

DNA Framework Nanoruler-Directed Surface Fluorescence Enhancement as a Sensing Platform for MicroRNA Detection.

作者信息

Yin Fangfei, Zhang Shuyang, Chen Hui, Li Qian, Zuo Xiaolei, Fan Chunhai

机构信息

Institute of Molecular Medicine, Shanghai Key Laboratory for Nucleic Acid Chemistry and Nanomedicine, Renji Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai200127, China.

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhang Jiang Institute for Advanced Study and National Center for Translational Medicine, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

J Am Chem Soc. 2025 Aug 6;147(31):28484-28491. doi: 10.1021/jacs.5c10210. Epub 2025 Jul 24.

Abstract

Surface-enhanced fluorescence can occur when fluorophores approach a rough or nanoscopic metallic surface, owing to the enhanced local electric field. However, revealing the surface fluorescence enhancement mechanism remains an important concern, primarily due to the lack of a nanoruler for precisely tuning the distance between the fluorophores and the substrate. Importantly, the precise distance is also critical as the heterogeneous size of spacers can lead to differentiated enhancement, resulting in low reproducibility. Herein, we propose a tetrahedral DNA framework (TDF) nanoruler strategy. Three vertexes of TDFs are thiolated for their immobilization on the Au matrix, while the fourth vertex is labeled with fluorophores. Therefore, the distance between the fluorophores and the Au substrate is governed by the size of TDFs. Various TDFs are combined as the nanoruler, and thus, we reveal the distance-dependent emission efficiency. We clearly observed the gradually enhanced and subsequently decreased emission along with the increased distance with the nanoruler. The maximum fluorescence enhancement was achieved at a critical distance of 5-7 nm with a narrow range for the labeled fluorophores on the Au substrate. Moreover, their rigid structure also realizes the uniform size of TDFs for homogeneous signal enhancement. Thus, sensitive detection of microRNA biomarkers of prostate cancer (PCa) was realized with a detection limit of 1 aM and used for early diagnosis of PCa. Furthermore, the TDF nanoruler strategy can be easily extended to other distance-dependent systems, enabling the optimization of their performance.

摘要

当荧光团靠近粗糙或纳米级金属表面时,由于局部电场增强,会发生表面增强荧光。然而,揭示表面荧光增强机制仍然是一个重要问题,主要原因是缺乏用于精确调节荧光团与底物之间距离的纳米尺。重要的是,精确的距离也很关键,因为间隔物的异质尺寸会导致不同的增强效果,从而导致重现性低。在此,我们提出了一种四面体DNA框架(TDF)纳米尺策略。TDF的三个顶点被硫醇化以便固定在金基质上,而第四个顶点用荧光团标记。因此,荧光团与金底物之间的距离由TDF的大小决定。将各种TDF组合作为纳米尺,从而我们揭示了距离依赖性发射效率。我们清楚地观察到随着纳米尺距离增加,发射先逐渐增强随后减弱。在金底物上标记的荧光团的临界距离为5 - 7 nm时实现了最大荧光增强,且范围较窄。此外,它们的刚性结构还实现了TDF尺寸的均匀性,以实现均匀的信号增强。因此,实现了对前列腺癌(PCa)微小RNA生物标志物的灵敏检测,检测限为1 aM,并用于PCa的早期诊断。此外,TDF纳米尺策略可以很容易地扩展到其他距离依赖性系统,从而优化其性能。

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