An amperometric glucose oxidase biosensor based on liposome microreactor-chitosan nanocomposite-modified electrode for determination of trace mercury

被引:1
作者
Jia Yu
Huanan Guan
Defu Chi
机构
[1] Northeast Forestry University,College of Forestry
[2] Northeast Forestry University,Alkali Soil Natural Environmental Science Center
[3] Harbin University of Commerce,College of Food Engineering
来源
Journal of Solid State Electrochemistry | 2017年 / 21卷
关键词
Biosensor; Glucose oxidase (GOD); Liposome; Layer by layer (LbL); Mercury(II) (Hg; );
D O I
暂无
中图分类号
学科分类号
摘要
A biosensor for trace mercury ions based on glucose oxidase (GOD) immobilized on liposome microreactor and chitosan (CS) nanocomposite through layer-by-layer method is described herein. The GOD liposome microreactors (GLMs) were characterized using Fourier transform infrared (FTIR), scanning electron microscopy (SEM), confocal laser scanning microscopy (CLSM), and amperometric methods. The results indicated that GLMs were prepared by encapsulating the enzyme GOD in l-α-phosphatidylcholine liposome resulting in spherical bioreactor with a mean diameter of 5.83 ± 0.75 μm. The encapsulation efficiency and drug loading content of the GLMs were about 53.58 ± 0.91 and 41.15 ± 0.95%, respectively. Cyclic voltammogram (CV) was further utilized to explore relevant electrochemical activity on (CS/GLM)8 nanocomposite-modified glassy carbon electrode (GCE). The biosensor based on the (CS/GLM)8-GCE composite films was applied to detect Hg2+ with a broad linear range from 0.5 to 5.00 μmol/L, and the detection limit was brought down to 0.076 μmol/L. The apparent Michaelis-Menten constant, Km, for the enzymatic reaction was 0.37 mmol/L (S/N = 3). Furthermore, the biosensor showed good stability and reproducibility. Such new biosensor based on encapsulation of GOD within liposome microreactors shows great promise for rapid, simple, and cost-effective analysis of Hg2+ in environmental samples.
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页码:1175 / 1183
页数:8
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  • [1] Suchacz B(2012)The analysis of heavy metals content in herbal infusions Cent Eur J Med 7 457-464
  • [2] Wesolowski M(2013)The determination of trace mercury in environmental samples: a review Chemeca 41 771-776
  • [3] Bansal N(2015)Sources and remediation techniques for mercury contaminated soil Environ Int 74 42-53
  • [4] Vaughan J(2014)Direct colorimetric biosensing of mercury(II) ion based on aggregation of poly-(γ-glutamic acid)-functionalized gold nanoparticles Spectrochim. Acta Part A 121 527-532
  • [5] Boullemant A(2013)Amperometric glucose biosensor based on silver nanowires and glucose oxidase Sens Actuators B: Chem 176 9-14
  • [6] Leong T(2012)The novel acetylcholinesterase biosensors based on liposome bioreactors-chitosan nanocomposite film for detection of organophosphates pesticides Food Res Int 49 15-21
  • [7] Xu J(2008)Enhanced sensitivity for Cu(II) by a salicylidine-functionalized polysiloxane carbon paste electrode Talanta 76 941-948
  • [8] Bravo AG(2016)Kinetics of urease inhibition-based amperometric biosensors for mercury and lead ions detection J Taiwan Inst Chem Eng 63 25-32
  • [9] Lagerkvist A(2005)Heavy metal determination by biosensors based on enzyme immobilised by electropolymerisation Biosens. Bioelectron. 20 1643-1647
  • [10] Bertilsson S(2010)Review of analytical figures of merit of sensors and biosensors in clinical applications TrAC Trends Anal Chem 29 1172-1183