An electrochemical sensor for bacterial lipopolysaccharide detection based on dual functional Cu2+-modified metal–organic framework nanoparticles

An electrochemical sensor based on dual functional Cu 2+ -modified metal–organic framework nanoparticles (Cu 2+ -NMOFs) for sensitive detection of bacterial lipopolysaccharide (LPS) is reported. Cu 2+ -NMOFs were prepared and characterized by SEM, EDS, XRD, and XPS. In this LPS sensor, LPS firstly i...

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Veröffentlicht in:Mikrochimica acta (1966) 2020-06, Vol.187 (7), p.415-415, Article 415
Hauptverfasser: Li, Zhi, Dai, Ge, Luo, Feifei, Lu, Yuqi, Zhang, Jingwen, Chu, Zhaohui, He, Pingang, Zhang, Fan, Wang, Qingjiang
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Sprache:eng
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Zusammenfassung:An electrochemical sensor based on dual functional Cu 2+ -modified metal–organic framework nanoparticles (Cu 2+ -NMOFs) for sensitive detection of bacterial lipopolysaccharide (LPS) is reported. Cu 2+ -NMOFs were prepared and characterized by SEM, EDS, XRD, and XPS. In this LPS sensor, LPS firstly immobilized in gold nanoparticles/reduced graphene oxide by C18 alkane thiol chains, since the LPS can interact with the C18 alkyl chains by strong intermolecular interactions. Then the Cu 2+ -NMOFs were captured by the anionic groups of the carbohydrate portions of LPS molecules and played a vital role of recognition unit. More importantly, the Cu 2+ -NMOFs can catalyze dopamine oxidation to generate aminochrome, resulting in a strong electrochemical oxidation signal. The electrochemical sensor based on dual functional Cu 2+ -NMOFs was investigated by differential pulse voltammetry, and the stripping peak currents of dopamine oxidized to aminochrome were used to monitor the level of LPS. The developed method demonstrated a wide linear range from 0.0015 to 750 ng/mL with a limit of detection of 6.1 × 10 −4  ng/mL. The fabricated sensor was applied to detect LPS in mouse blood serum and satisfactory results were achieved. Compared to other detection schemes by using the LPS-binding proteins, peptides, and aptamer, the proposed LPS determination based on the catalytic peroxidase-mimicking NMOFs has some advantages such as good reproducibility, low detection limit, and excellent specificity. Graphical abstract An electrochemical sensor based on dual functional Cu 2+ -modified metal–organic framework was developed for detection of bacterial lipopolysaccharide. This sensor combined a metal ion–based target recognition and electrocatalytic detection, and provided a high sensitive strategy for detection of lipopolysaccharide.
ISSN:0026-3672
1436-5073
DOI:10.1007/s00604-020-04364-x