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Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor.
Biosens Bioelectron. 2009 Jan 01; 24(5):1286-91.BB

Abstract

A tetragonal pyramid-shaped porous ZnO (TPSP-ZnO) nanostructure is used for the immobilization, direct electrochemistry and biosensing of proteins. The prepared ZnO has a large surface area and good biocompatibility. Using glucose oxidase (GOD) as a model, this shaped ZnO is tested for immobilization of proteins and the construction of electrochemical biosensors with good electrochemical performances. The interaction between GOD and TPSP-ZnO is examined by using AFM, N(2) adsorption isotherms and electrochemical methods. The immobilized GOD at a TPSP-ZnO-modified glassy carbon electrode shows a good direct electrochemical behavior, which depends on the properties of the TPSP-ZnO. Based on a decrease of the electrocatalytic response of the reduced form of GOD to dissolved oxygen, the proposed biosensor exhibits a linear response to glucose concentrations ranging from 0.05 to 8.2mM with a detection limit of 0.01mM at an applied potential of -0.50V which has better biosensing properties than those from other morphological ZnO nanoparticles. The biosensor shows good stability, reproducibility, low interferences and can diagnose diabetes very fast and sensitively. Such the TPSP-ZnO nanostructure provides a good matrix for protein immobilization and biosensor preparation.

Authors+Show Affiliations

Jiangsu Key Laboratory of Biofunctional Materials, College of Chemistry and Environmental Science, Nanjing Normal University, Nanjing 210097, PR China.No affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info available

Pub Type(s)

Evaluation Study
Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

18774704

Citation

Dai, Zhihui, et al. "Immobilization and Direct Electrochemistry of Glucose Oxidase On a Tetragonal Pyramid-shaped Porous ZnO Nanostructure for a Glucose Biosensor." Biosensors & Bioelectronics, vol. 24, no. 5, 2009, pp. 1286-91.
Dai Z, Shao G, Hong J, et al. Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor. Biosens Bioelectron. 2009;24(5):1286-91.
Dai, Z., Shao, G., Hong, J., Bao, J., & Shen, J. (2009). Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor. Biosensors & Bioelectronics, 24(5), 1286-91. https://doi.org/10.1016/j.bios.2008.07.047
Dai Z, et al. Immobilization and Direct Electrochemistry of Glucose Oxidase On a Tetragonal Pyramid-shaped Porous ZnO Nanostructure for a Glucose Biosensor. Biosens Bioelectron. 2009 Jan 1;24(5):1286-91. PubMed PMID: 18774704.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Immobilization and direct electrochemistry of glucose oxidase on a tetragonal pyramid-shaped porous ZnO nanostructure for a glucose biosensor. AU - Dai,Zhihui, AU - Shao,Guojian, AU - Hong,Jianmin, AU - Bao,Jianchun, AU - Shen,Jian, Y1 - 2008/08/03/ PY - 2008/04/10/received PY - 2008/07/17/revised PY - 2008/07/21/accepted PY - 2008/9/9/pubmed PY - 2009/3/10/medline PY - 2008/9/9/entrez SP - 1286 EP - 91 JF - Biosensors & bioelectronics JO - Biosens Bioelectron VL - 24 IS - 5 N2 - A tetragonal pyramid-shaped porous ZnO (TPSP-ZnO) nanostructure is used for the immobilization, direct electrochemistry and biosensing of proteins. The prepared ZnO has a large surface area and good biocompatibility. Using glucose oxidase (GOD) as a model, this shaped ZnO is tested for immobilization of proteins and the construction of electrochemical biosensors with good electrochemical performances. The interaction between GOD and TPSP-ZnO is examined by using AFM, N(2) adsorption isotherms and electrochemical methods. The immobilized GOD at a TPSP-ZnO-modified glassy carbon electrode shows a good direct electrochemical behavior, which depends on the properties of the TPSP-ZnO. Based on a decrease of the electrocatalytic response of the reduced form of GOD to dissolved oxygen, the proposed biosensor exhibits a linear response to glucose concentrations ranging from 0.05 to 8.2mM with a detection limit of 0.01mM at an applied potential of -0.50V which has better biosensing properties than those from other morphological ZnO nanoparticles. The biosensor shows good stability, reproducibility, low interferences and can diagnose diabetes very fast and sensitively. Such the TPSP-ZnO nanostructure provides a good matrix for protein immobilization and biosensor preparation. SN - 1873-4235 UR - https://www.unboundmedicine.com/medline/citation/18774704/Immobilization_and_direct_electrochemistry_of_glucose_oxidase_on_a_tetragonal_pyramid_shaped_porous_ZnO_nanostructure_for_a_glucose_biosensor_ L2 - https://linkinghub.elsevier.com/retrieve/pii/S0956-5663(08)00392-8 DB - PRIME DP - Unbound Medicine ER -