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Updated: Apr 10, 2026

A Polyaniline-based Sensor of Nucleic Acids
Published on: November 1, 2016
Homogeneous PDA/Fe3O4 Nanocomposites and 3D-HCR/AgNCs-Based One-Pot Biosensor for Triple-Modal Nucleic Acid Detection
Yingjing Li1, Yi Wang1, Dan Zhang1
1Provincial Key Laboratory of Multimodal Perceiving and Intelligent Systems, Engineering Research Center of Intelligent Human Health Situation Awareness of Zhejiang Province, Jiaxing Key Laboratory of Molecular Recognition and Sensing, College of Biological and Chemical Engineering, Jiaxing University, Jiaxing, 314001, P. R. China.
Abstract:
The seamless and efficient integration of multiple detection modes─such as electrochemical, colorimetric, magnetic, thermal, and fluorescent signaling─into a single sensing platform remains a significant challenge in advanced sensing technology. In this work, we developed a trimodal biosensor based on homogeneous polydopamine (PDA)/Fe3O4/CP (CP: capture probe) nanocomposites and three-dimensional hybridization chain reaction-templated silver nanoclusters (3D-HCR/AgNCs) for the ultrasensitive and precise detection of nucleic acids. Briefly, the presence of the target KRAS gene segment initiates a hybridization chain reaction (HCR), which acts as a bridge linking capture probes (PDA/Fe3O4/CP) and signal probes (3D-HCR/AgNCs). The HCR bridge hybridizes with both components, forming a PDA/Fe3O4/CP/HCR-bridge/3D-HCR/AgNCs complex that can be magnetically separated. Since DNA-templated AgNCs generate measurable signals across three distinct modes─electrochemistry, fluorescence, and visible/UV-vis spectroscopy─a fully integrated trimodal sensing platform is realized. The results from these three modes can be cross-verified, significantly enhancing the reliability of the assay. Leveraging homogeneous PDA/Fe3O4/CP nanocomposites and a strategically designed blocker, this strategy enables straightforward, one-pot detection of target nucleic acids without the need for vibration, electrode modification, or multiple washing and separation steps. Importantly, beyond serving as a signal amplifier, the 3D-HCR structure also promotes aggregation-induced emission enhancement of AgNCs, thereby increasing the sensitivity of the fluorescence mode. This work introduces a facile and efficient approach that paves the way for the construction of integrated trimodal sensing platforms.

