Related Experiment Video
Updated: Aug 6, 2026

Probe-based Real-time PCR Approaches for Quantitative Measurement of microRNAs
Published on: April 14, 2015
Self-assembled multifunctional hairpin probe for ultrasensitive and mismatch-selective miRNA detection
Baoqiang Chen1, Yiping Fan2, Qi Wang3
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, Zhejiang, 314001, China.
None:
Sensitive, specific, and stable detection of microRNAs (miRNAs) in complex biological environments remains a formidable challenge in molecular diagnostics. We introduce a novel bidirectional palindromic assembled multifunctional hairpin probe (A-MF-HP)-a molecular tool that integrates target recognition, cascade signal amplification, and fluorescence reporting into a single, compact system. Two palindromic arms drive autonomous, bidirectional self-assembly into a nuclease-resistant architecture, enabling robust operation in serum-rich environments. Upon recognition of miRNA-21, a structural switch in one hairpin triggers polymerase extension, nicking, and strand displacement all without auxiliary probes. This initiates a self-propagating disassembly cascade, unfolding additional hairpins and exponentially amplifying the signal. Under the optimized conditions, the platform demonstrates femtomolar-level sensitivity (about 1× 10-15 M) across a six-order dynamic range, with single-nucleotide mismatch discrimination and negligible cross-reactivity to unrelated miRNAs. Notably, A-MF-HP retains full functionality after 12 h in 10% human serum, and clinical application to blood samples from lung cancer patients revealed marked fluorescence elevation compared to healthy controls. By uniting biostability, multifunctionality, and autonomous amplification in a single programmable probe, this novel strategy addresses limitations commonly observed in multi-component isothermal amplification assays, such as poor nuclease tolerance and dependence on multiple separate probes, offering a powerful diagnostic tool for miRNA profiling in biomedical and clinical settings.

