4.8 Article

Metal-Enhanced Fluorescence-Based Core-Shell Ag@SiO2 Nanoflares for Affinity Biosensing via Target-Induced Structure Switching of Aptamer

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 6, 期 3, 页码 1944-1950

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am4049942

关键词

metal-enhanced fluorescence; core-shell nanoparticle; silver nanoparticle; silica; aptamer; adenosine-5 '-triphosphate

资金

  1. National Natural Science Foundation of China [21275097]
  2. Fundamental Research Fund for the Central Universities [GK201303001]
  3. Program for Changjiang Scholars and Innovative Research Team in University [IRT 1070]

向作者/读者索取更多资源

One of the great challenges in metal-enhanced fluorescence (MEF) technology is the achievement of distance modulation with nanometer accuracy between the fluorophore and metal surface to obtain maximum enhancement. We propose an MEF-based core-shell Ag@SiO2 nanoflare for distance control via the thickness of silica shell with cooperation of DNA hybridization. The nanoflare contains a 50 nm spherical silver nanoparticle (Ag NP) core, a 8 nm silica shell, and cyanine (Cy5)-labeled aptamer hybridized with a complementary DNA (cDNA) immobilized onto the shell surface. The formation of the Cy5-labeled aptamer/cDNA duplex on the Ag@SiO2 NP surface results in the confinement of Cy5 to the shell surface and an increase in the fluorescence of Cy5 with a 32-fold enhancement factor in bulk solution (signal-on). In the presence of affinity-binding targets, the Cy5-labeled aptamers confined onto the Ag@SiO2 NP surface dissociate from their cDNA into the solution because of structure switching. The target-induced release of aptamer leads to a reduction in the enhanced fluorescence signal of the labeled Cy5 moiety (signal-off). Thus, the nanoflare can be used as a sensor for target recognition. Using adenosine-5'-triphosphate (ATP) aptamer, detection of ATP has a linear response from 0 to 0.5 mM and a detection limit of 8 mu M. With various types of DNA probes immobilized onto the core-shell Ag@SiO2 NPs, the MEF-based nanoflare has provided an effective platform for the detection and quantification of a broad range of analytes, such as mRNA regulation and detection, cell sorting, and gene profiling.

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