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Rapid Homogeneous Detection of Biological Assays Using Magnetic Modulation Biosensing System
Published on: June 13, 2010
Hydroxylated Bimetallic MOF Dual-Mode Biosensor: A Platform for Rapid Screening and Accurate Quantitative Detection
Lu-Ying Wang1, Yan Cheng2, Shuang Yin2
1Key Laboratory of Structure and Functional Regulation of Hybrid Materials (Ministry of Education), Key Laboratory of Chemistry for Inorganic/Organic Hybrid Functionalized Materials of Anhui Province Key Laboratory of Functional Inorganic Materials of Anhui Province, School of Chemistry & Chemical Engineering, Anhui University, Hefei 230601, P. R. China.
Abstract:
Elevated levels of free bilirubin (f-Bil) in the blood can cause neonatal brain damage, making the development of rapid and accurate detection methods critical for diagnosing neonatal jaundice. This study targeted the structural characteristics of f-Bil and synthesized a hydroxylated bimetallic MOF (FeCu-MOF-OH) with high specificity for f-Bil through surface modification using organic small molecules (THBA). Based on its excellent peroxidase-like activity and photochemical properties, a dual-mode detection platform combining colorimetric and molecularly imprinted photoelectrochemical detection was developed. FeCu-MOF-OH exhibits significantly enhanced peroxidase-like activity and photochemical properties due to its high porosity, abundant catalytically active sites, and bimetallic synergistic effects. The electronic structure of the bimetallic nanozyme was studied by using first-principles density functional theory calculations. In colorimetry, the coordination interaction between f-Bil and the Fe3+ and Cu2+ active sites inhibits the nanozyme's activity, reducing the substrate's colorimetric absorbance and enabling rapid screening of f-Bil within 10 min. To further accurately detect the concentration of f-Bil in blood, a molecularly imprinted photoelectrochemical sensor was constructed on an electrode surface via electropolymerization. Detection was achieved by monitoring changes in photocurrent caused by the elution and rebinding of f-Bil. The detection limits of the two methods were as low as 0.68 nM and 1 pM, respectively. Clinical serum sample testing validated the reliability of this approach. This dual-mode method combines the rapid initial screening capability of colorimetry with the precision of molecular imprinting and is expected to play a significant role in the early diagnosis and treatment monitoring of neonatal jaundice.

