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Updated: May 15, 2026

Ultrasensitive Detection of Biomarkers by Using a Molecular Imprinting Based Capacitive Biosensor
Published on: February 16, 2018
Nanoconfined metal-organic frameworks encapsulating platinum(II) complexes with self-catalytic aggregation-induced
Wanzhen Chen1, Ziqi Lian2, Rongkai Ye2
1School of Chemistry and Chemical Engineering, Key Lab of Fuel Cell Technology of Guangdong Province, South China University of Technology, Guangzhou, 510641, China; State Key Laboratory of Organ Failure Research, National Clinical Research Center for Kidney Disease, Guangdong Provincial Institute of Nephrology, Guangdong Provincial Key Laboratory of Renal Failure Research, Guangdong, Provincial Clinical Research Center for Kidney Disease, Nanfang Hospital, Southern Medical University, Guangzhou, 510515, China.
Abstract:
Aggregation-induced electrochemiluminescence (AIECL) luminophores have garnered significant attention for biosensing applications owing to their enhanced electrochemiluminescence (ECL) emission in aggregated states. However, conventional AIECL systems often suffer from structural instability in physiological environments due to weak intermolecular force of their aggregation. Here, we have successfully constructed nanoconfined Zr-based metal-organic frameworks (PCN-777 MOFs) encapsulating platinum(II)-[4,2':6',4″-terpyridine]-4'-carboxylic acid (Pt(tpyc)2+) complexes, in which Pt(tpyc)2+) complexes are immobilized into PCN-777 MOFs via Zr4+ and -COO- coordination bond. The resulting Pt-PCN-777 MOFs achieved exceptional structural stability and high loading efficiency of Pt(tpyc)2+. Critically, the mesoporous structural of the PCN-777-MOFs efficiently proconcentrates of S2O82- co-reactant within its channels, significantly shortening electron-transfer pathway between immobilized Pt(tpyc)2+ emitters and coreactants. The synergistic effect of the Pt-PCN-777 MOFs accelerates K2S2O8 decomposition, leading to enhanced ECL signal. Through integrating catalytic hairpin assembly and hemin-quenching strategies, the "Signal On-Off" ECL biosensor is constructed for ultra-sensitive detection of miRNA-21. The miRNA-21 biosensor exhibits superior analytical performance, such as high sensitivity (approximately 9.03 × 1017), wide linear range (102-109 aM), femtomolar-level detection limit (∼66 aM), exceptional selectivity and operational stability. This study addresses the limitations of instability of traditional AIECL systems and is hopeful to establish a versatile platform of Pt(II)-MOF composites for advanced ECL probes in clinical diagnosis.
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