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Ultrasensitive Detection of Biomarkers by Using a Molecular Imprinting Based Capacitive Biosensor
Published on: February 16, 2018
Robust and Sensitive Electrochemical Biosensor Based on Cascade Interface Engineering for piRNA Detection in Breast
Xinyu Zhang1,2, Rubing Xiong1,2, Zijie Li2
1Department of Clinical Laboratory, Guangdong Provincial Key Laboratory of Major Obstetric Diseases, Guangdong Provincial Clinical Research Center for Obstetrics and Gynecology, The Third Affiliated Hospital, Guangzhou Medical University, No. 63 Duobao Road, Liwan District, Guangzhou, Guangdong510150, P. R. China.
None:
Point-of-care electrochemical sensors require interfaces that simultaneously deliver high sensitivity, mechanical robustness, and long-term stability. These requirements remain difficult to reconcile at nanostructured electrode interfaces. Here, we report a cascade interfacial engineering strategy that integrates plasma-synthesized polydopamine (PDA), MXene nanosheets, and gold nanoparticles (AuNPs) to construct a high-performance electrochemical sensing interface. A rapid, one-minute plasma process forms a conductive PDA interlayer that serves both as a universal adhesive and as a mediator for the in situ electrodeposition of MXene and pH-regulated AuNPs, yielding a mechanically resilient and highly conductive nanocomposite electrode. This architecture markedly enhances electroactive surface area, electron transport, and interfacial stability under repeated mechanical deformation and prolonged storage. When coupled with catalytic hairpin assembly, the resulting platform enables ultrasensitive nucleic acid detection down to the femtomolar regime (within the linear range of 0-100 nM, the limits of detection are 0.14, 0.44, and 0.06 fM, respectively) and maintains high reproducibility across batches (RSD as low as 2.05%). Integration with a portable printed circuit board further enables reliable analysis of clinical serum samples. Beyond a specific biosensing application, this work establishes a generalizable interface-engineering paradigm for stabilizing nanomaterial-modified electrodes, advancing the design of robust, scalable point-of-care electrochemical systems.
