| Literature DB >> 28869533 |
Wenbo Dong1, Weiping Li2, Yu Chen3, Yanchun Ye4, Shaohua Jin5.
Abstract
In the present work, a fluorescent H₂O₂ biosensor was constructed by encapsulating fluorescent probe Rhodamine B (RhmB) in the hydrophobic cavity of the cyclodextrin (β-CD) and immobilizing catalase (CAT) on the 2-NH₂ of chitosan (CTS) in a chitosan 6-OH immobilized β-cyclodextrin derivative (CTS-6-CD). The inclusion complex of CTS-6-CD to RhmB (CTS-6-CD-RhmB) was prepared by a solution method. Its structure and inclusion efficiency were determined by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), and fluorescence spectroscopy (FL). CAT was immobilized on CTS-6-CD-RhmB to eventually form the functional membrane, CTS-6-CD-RhmB-CAT, via glutaraldehyde crosslinking, which was further characterized by FTIR and FL, and used as a H₂O₂ biosensor. The functional membrane was used to simultaneously oxidize and detect H₂O₂. The detection condition was optimized as pH 8, a reaction temperature of 25 °C, and an immobilized enzyme concentration of 2 × 10-4 mol/L. The fluorescence response of the biosensor exhibited a good linear relationship with the concentration of H₂O₂ in the range of 20 mΜ-300 μM and the detection limit of 10-8 mol/L.Entities:
Keywords: Rhodamine B; catalase; chitosan; fluorescent biosensor; β-cyclodextrin
Mesh:
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Year: 2017 PMID: 28869533 PMCID: PMC5618423 DOI: 10.3390/md15090284
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Schematic diagram of experimental structure and detection process.
Figure 2Characterization of CTS-6-CD-RhmB (a) Infrared spectrum of CTS-6-CD-RhmB, CTS-6-CD and RhmB; (b) XRD spectra of CTS-CD-RhmB and CTS-6-CD; (c) Fluorescence spectroscopy of CTS-6-CD-RhmB; (d) I/ΔF vs. 1/C curve and standard curve of inclusion effect of cyclodextrin on RhmB (the inserting figure).
Figure 3Characterization of CTS-6-CD-RhmB-CAT (a) Infrared spectrum of CTS-6-CD-RhmB-CAT and CTS-6-CD-RhmB; (b) The influence of the addition of H2O2 on fluorescence spectroscopy of CTS-6-CD-RhmB-CAT.
Figure 4Optimization of H2O2 detection conditions (a) The difference of fluorescence intensity (ΔFI) with the change of pH; (b) ΔFI with the change of TIME; (c) ΔFI with the change of TEMP; (d) ΔFI with the change of enzyme concentration.
Figure 5Fluorescence response of CTS-6-CD-RhmB-CAT to different concentrations of H2O2.
Figure 6Linear relationship between fluorescence intensity and H2O2 concentration.