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Updated: Sep 28, 2026

Visual Detection of Multiple Nucleic Acids in a Capillary Array
Published on: November 15, 2017
Label-free and intelligent fluorometric array for simultaneously sensing of multiplexed metal ions based on DNA
Lu Shi1, Jiayi Jin1, Hanyao Liu1
1Huzhou Key Laboratory of Medical and Environmental Applications Technologies, School of Life Sciences, Huzhou Normal University, Zhejiang, 313000, China; Zhejiang-French Digital Monitoring Laboratory for Aquatic Resources and Environment, Huzhou Normal University, Zhejiang, 313000, China.
Abstract:
Multiplex detection of metal ions is often challenged by their similar charge states and ionic radii, which interfere with for simultaneous analysis and cause the low selectivity of conventional lock-and-key recognition elements. Herein, a label-free and intelligent fluorometric array has been developed for simultaneously probing multiplexed metal ions by utilizing the conformational diversity of DNA structures, including G-triplex, G-quadruplex, and dimeric G-quadruplex DNA. The sensing mechanism relies on thioflavin T intercalation, which converts metal-binding-induced DNA conformational changes into quantifiable fluorescence signals. The resulting fluorescence fingerprints were first visualized using principal component analysis and subsequently classified using supervised machine-learning algorithms. A comparative evaluation of multiple models reveals that the support vector machine achieves the highest classification performance for selective identification of multiple metal ions. The developed fluorometric array can accurately distinguish the samples containing various metal species (Fe3+, Co2+, Hg2+, Ni2+, Zr4+, Ag+, and Zn2+) over a wide range of concentrations (10-200 μM), with a 100% accuracy in blind validation tests. Subsequently, the feasibility of the array for detecting multiple metal ions in mixtures, as well as in lake water and tap water, is also demonstrated. As compared with most current analysis technologies, this method offers the desirable advantage of simultaneous discrimination of multiple metal ions including the heavy and non-heavy ones. Therefore, this study establishes a powerful, efficient, and cost-effective platform for the simultaneous and intelligent detection of multiple metal ions, showing strong potential as a rapid on-site screening tool for preliminary risk assessment of metal contamination.

