Reagentless biosensor based on layer-by-layer assembly of functional multiwall carbon nanotubes and

来源 :Journal of Zhejiang University-Science B(Biomedicine & Biote | 被引量 : 0次 | 上传用户:ny341
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A simple and controllable layer-by-layer (LBL) assembly method was proposed for the construction of reagentless biosensors based on electrostatic interaction between functional multiwall carbon nanotubes (MWNTs) and enzyme-mediator biocomposites.The carboxylated MWNTs were wrapped with polycations poly(allylamine hydrochloride) (PAH) and the resulting PAH-MWNTs were well dispersed and positively charged.As a water-soluble dye methylene blue (MB) could mix well with horseradish peroxidase (HRP) to form a biocompatible and negativelycharged HRP-MB biocomposite.A (PAH-MWNTs/HRP-MB)n bionanomultilayer was then prepared by electrostatic LBL assembly of PAH-MWNTs and HRP-MB on a polyelectrolyte precursor film-modified Au electrode.Due to the excellent biocompatibility of HRP-MB biocomposite and the uniform LBL assembly,the immobilized HRP could retain its natural bioactivity and MB could efficiently shuttle electrons between HRP and the electrode.The incorporation of MWNTs in the bionanomultilayer enhanced the surface coverage concentration of the electroactive enzyme and increased the catalytic current response of the electrode.The proposed biosensor displayed a fast response (2s) to hydrogen peroxide with a low detection limit of 2.0×10-7 mol/L (S/N=3).This work provided a versatile platform in the further development of reagentless biosensors. A simple and controllable layer-by-layer (LBL) assembly method was proposed for the construction of reagentless biosensors based on electrostatic interaction between functional multiwall carbon nanotubes (MWNTs) and enzyme-mediator biocomposites. The carboxylated MWNTs were wrapped with polycations poly (allylamine (PAH) and the resulting PAH-MWNTs were well dispersed and ranked charged. As a water-soluble dye methylene blue (MB) could mix well with horseradish peroxidase (HRP) to form a biocompatible and negatively charged HRP-MB biocomposite. A (PAH-MWNTs / HRP-MB) n bionanomultilayer was then prepared by an electrostatic LBL assembly of PAH-MWNTs and HRP-MB on a polyelectrolyte precursor film-modified Au electrode. Due to the excellent biocompatibility of HRP-MB biocomposite and the uniform LBL assembly, the immobilized HRP could retain its natural bioactivity and MB could serve shuttle electrons between HRP and the electrode. incorporation of MWNTs in the bionanomult ilayer enhanced the surface coverage concentration of the electroactive enzyme and increased the catalytic current response of the electrode. proposed proposed biosensor displayed a fast response (2s) to hydrogen peroxide with a low detection limit of 2.0 × 10-7 mol / L (S / N = 3). This work provided a versatile platform in the further development of reagentless biosensors.
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