Related Experiment Video
Updated: May 31, 2025

Synthesis of Wavelength-shifting DNA Hybridization Probes by Using Photostable Cyanine Dyes
Published on: July 6, 2016
Dimerizing DNA-AgNCs via a C-Ag+-C structure for fluorescence sensing with dual-output signals
Shuai Chen1, Wenjie Hu1, Yuqi Cheng2
1Key Laboratory of Chemical Biology & Traditional Chinese Medicine Research (Ministry of Education of China), National and Local Joint Engineering Laboratory for New Petrochemical Materials and Fine Utilization of Resources, Key Laboratory of the Assembly and Application of Organic Functional Molecules of Hunan Province, Hunan Normal University, Changsha, 410081, P. R. China. zhh_1998@163.com.
Abstract:
The unique insertion capability of Ag+ into cytosine-cytosine (C-Ag+-C) mismatch-base pairs enables precise fabrication of DNA-trapped silver nanoclusters (DNA-AgNCs) through varying the DNA sequences, thereby offering precise assembly of DNA-AgNCs and demonstrating great fluorescence applications. However, most of the DNA-AgNC-based fluorescence sensors have a single output signal. Herein, we developed a dimerized DNA-AgNC system through C-Ag+-C connection at the 3'-end of a designed DNA. The formation and crack-up of C-Ag+-C endows DNA-AgNCs with the ability to identify Ag+ and cysteine (Cys) with dual-output signals, changed fluorescence intensity (FI) and wavelength-shift in NIR emission around 815 nm via photoinduced electron transfer (PET), respectively. Superior linearity of FI for Cys and Ag+ concentrations was demonstrated. Meanwhile, the practical utility of this platform was also successfully verified in milk and lake water.

