Hydroxyl-containing antimony oxide bromide nanorods combined with chitosan for biosensors

被引:127
作者
Lu, Xianbo
Wen, Zhenhai
Li, Jinghong [1 ]
机构
[1] Tsing Hua Univ, Dept Chem, Key Lab Bioorgan Phosphorus Chem & Chem Biol, Beijing 100084, Peoples R China
[2] Univ Sci & Technol China, Dept Chem, Anhua 230026, Peoples R China
基金
中国国家自然科学基金; 高等学校博士学科点专项科研基金;
关键词
biosensor; direct electron transfer; antimony oxide bromide; chitosan; nanorods; horseradish peroxidase;
D O I
10.1016/j.biomaterials.2006.07.026
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A hydroxyl-containing antimony oxide bromide (AOB) nanorods was synthesized by a hydrothermal method. TEM and SEM images showed that the as-prepared AOB nanorods were very copious with diameters of about 50 nm. The AOB nanorods could be easily combined with biopolymer chitosan (Chi) to form an organic-inorganic hybrid material, and a biocompatible, crack-free and porous Chi-AOB composite film could be readily obtained. Horseradish peroxidase (HRP) was chosen as a model protein to construct a reagentless mediator-free third-generation HRP biosensor. UV-visible and FTIR spectroscopy revealed that HRP entrapped in the composite film could retain its native secondary structure. A pair of stable and well-defined redox peaks of HRP with a formal potential of about -0.24V (vs. Ag/AgCl) in a pH 7.0 phosphate-buffered solution (PBS) were obtained at the HRP-Chi-AOB composite film modified glassy carbon (GC) electrode. With advantages of organic-inorganic hybrid materials, dramatically facilitated direct electron transfer of HRP and excellent bioelectrocatalytic activity towards H2O2 were demonstrated. The apparent Michaelis-Menten constant K-M(app) was calculated to be 7.5 mu M, indicating that HRP entrapped in the composite film possessed high affinity to H2O2 and exhibited high enzymatic activity. The prepared biosensor displayed good sensitivity and reproducibility, wide linear range, low detection limit, fast response and excellent long-term stability. The Chi-AOB composite film could be used efficiently for the entrapment of other redox-active proteins and may find wide potential applications in biosensors, biocatalysis, biomedical devices and bioelectronics. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:5740 / 5747
页数:8
相关论文
共 31 条
[1]   DIRECT ELECTROCHEMISTRY OF REDOX PROTEINS [J].
ARMSTRONG, FA ;
HILL, HAO ;
WALTON, NJ .
ACCOUNTS OF CHEMICAL RESEARCH, 1988, 21 (11) :407-413
[2]   Porous gold-nanoparticle-CaCO3 hybrid material:: Preparation, characterization, and application for horseradish peroxidase assembly and direct electrochemistry [J].
Cai, WY ;
Xu, Q ;
Zhao, XN ;
Zhu, JJ ;
Chen, HY .
CHEMISTRY OF MATERIALS, 2006, 18 (02) :279-284
[3]   A gold nanoparticles/sol-gel composite architecture for encapsulation of immunoconjugate for reagentless electrochemical immunoassay [J].
Chen, J ;
Tang, JH ;
Yan, F ;
Ju, HX .
BIOMATERIALS, 2006, 27 (10) :2313-2321
[4]   Synthesis of Sb2O3 nanorods under hydrothermal conditions [J].
Chen, XY ;
Wang, X ;
An, CH ;
Liu, JW ;
Qian, YT .
MATERIALS RESEARCH BULLETIN, 2005, 40 (03) :469-474
[5]  
Corma A, 2002, ADV MATER, V14, P71, DOI 10.1002/1521-4095(20020104)14:1<71::AID-ADMA71>3.0.CO
[6]  
2-W
[7]   Mesoporous materials promoting direct electrochemistry and electrocatalysis of horseradish peroxidase [J].
Dai, ZH ;
Ju, HX ;
Chen, HY .
ELECTROANALYSIS, 2005, 17 (10) :862-868
[8]   IMMOBILIZATION OF CANE AMYLASE AND ACID-PHOSPHATASE ON TRICALCIUM PHOSPHATE (TCP) GEL [J].
DAS, G ;
PRABHU, KA .
ENZYME AND MICROBIAL TECHNOLOGY, 1990, 12 (08) :625-630
[9]  
EDSTRAND M, 1955, ARK KEMI, V8, P279
[10]   Direct peroxidase bioelectrocatalysis on a variety of electrode materials [J].
Ferapontova, EE .
ELECTROANALYSIS, 2004, 16 (13-14) :1101-1112