Comparison of enzymatic and non-enzymatic glucose sensors based on hierarchical Au-Ni alloy with conductive polymer

被引:192
作者
Lee, Won-Chul [1 ]
Kim, Kwang-Bok [3 ]
Gurudatt, N. G. [1 ,4 ,5 ]
Hussain, Khalil K. [1 ]
Choi, Cheol Soo [4 ,5 ]
Park, Deog-Su [2 ]
Shim, Yoon-Bo [1 ,2 ]
机构
[1] Pusan Natl Univ, Dept Chem, Busan 46241, South Korea
[2] Pusan Natl Univ, IBST, Busan 46241, South Korea
[3] Korea Inst Ind Technol, Biomed Syst & Technol Grp, Cheonan 31056, South Korea
[4] Gachon Univ, Gil Med Ctr, Endocrinol, Internal Med,Coll Med, Incheon 21999, South Korea
[5] Gachon Univ, Korea Mouse Metab Phenotyping Ctr, Lee Gil Ya Canc & Diabet Inst, Coll Med, Incheon 21999, South Korea
关键词
Hieratical Au-Ni alloy; Amperometric biosensor; Conducting polymer; Glucose sensor; ELECTROCHEMICAL SENSORS; NANOMATERIALS; CELLS;
D O I
10.1016/j.bios.2019.01.028
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Enzymatic and non-enzymatic amperometric glucose sensors based on nanostructured Au-Ni alloy were prepared and compared in their performance. The hierarchically structured Au-Ni surface was merely used for the non-enzymatic glucose sensor, while glucose oxidase attached poly-3'(benzoic acid) -2,2':5',2'- terthiophene (pTBA) formed on the alloy surface was used as the enzymatic sensor. The fabricated sensor was characterized using surface analysis and electrochemical experiments. In case of the enzymatic sensor, the anodic current of H2O2 generated from the enzyme reaction was used as the analytical signal, while the direct oxidation of glucose was observed on a mere Au-Ni alloy electrode without enzyme immobilization, which shows an excellent catalytic oxidation of glucose even in physiological pH. The potential pulse pretreatment of the sensor surfaces improved the performance, which allowed both the sensors reproducible and reusable (enzymatic sensor: coefficient of variation = 1.82%, n = 5, non-enzymatic: coefficient of variation = 2.93%). The enzymatic biosensor reveals the advantages of increased sensitivity, selectivity, and stability, compared with the non-enzymatic sensor. The linear range of enzymatic sensor was attained from 1.0 mu M to 30.0 mM with a detection limit of 0.29 mu M. The reliabilities of the sensors were also demonstrated through the glucose analysis in human blood samples, and the result was compared with the commercially available glucometer.
引用
收藏
页码:48 / 54
页数:7
相关论文
共 26 条
[1]  
Amer Diabet Assoc, 2013, DIABETES CARE, V36, pS67, DOI [10.2337/dc13-S067, 10.2337/dc14-S081, 10.2337/dc10-S011, 10.2337/dc11-S011, 10.2337/dc13-S011, 10.2337/dc12-s064, 10.2337/dc11-S062, 10.2337/dc10-S062, 10.2337/dc12-s011]
[2]   Detection of protein-DNA interaction with a DNA probe: distinction between single-strand and double-strand DNA-protein interaction [J].
Ban, CG ;
Chung, SM ;
Park, DS ;
Shim, YB .
NUCLEIC ACIDS RESEARCH, 2004, 32 (13) :e110
[3]   Noble metal nanomaterials: Controllable synthesis and application in fuel cells and analytical sensors [J].
Guo, Shaojun ;
Wang, Erkang .
NANO TODAY, 2011, 6 (03) :240-264
[4]   Recent advances in electrochemical non-enzymatic glucose sensors - A review [J].
Hwang, Dae-Woong ;
Lee, Saram ;
Seo, Minjee ;
Chung, Taek Dong .
ANALYTICA CHIMICA ACTA, 2018, 1033 :1-34
[5]   Design of electrocatalysts for oxygen- and hydrogen-involving energy conversion reactions [J].
Jiao, Yan ;
Zheng, Yao ;
Jaroniec, Mietek ;
Qiao, Shi Zhang .
CHEMICAL SOCIETY REVIEWS, 2015, 44 (08) :2060-2086
[6]   Electron-Transfer Mediator for a NAD-Glucose Dehydrogenase-Based Glucose Sensor [J].
Kim, Dong-Min ;
Kim, Min-yeong ;
Reddy, Sanapalli S. ;
Cho, Jaegeol ;
Cho, Chul-ho ;
Jung, Suntae ;
Shim, Yoon-Bo .
ANALYTICAL CHEMISTRY, 2013, 85 (23) :11643-11649
[7]   Continuous glucose monitoring using a microneedle array sensor coupled with a wireless signal transmitter [J].
Kim, Kwang Bok ;
Lee, Won-Chul ;
Cho, Chul-Ho ;
Park, Deog-Su ;
Cho, Seong Je ;
Shim, Yoon-Bo .
SENSORS AND ACTUATORS B-CHEMICAL, 2019, 281 :14-21
[8]   Synthesis and catalytic properties of bimetallic nanomaterials with various architectures [J].
Liu, Xiangwen ;
Wang, Dingsheng ;
Li, Yadong .
NANO TODAY, 2012, 7 (05) :448-466
[9]   Electrocatalysis and electroanalysis of nickel, its oxides, hydroxides and oxyhydroxides toward small molecules [J].
Miao, Yuqing ;
Ouyang, Lei ;
Zhou, Shilin ;
Xu, Lina ;
Yang, Zhuoyuan ;
Xiao, Mingshu ;
Ouyang, Ruizhuo .
BIOSENSORS & BIOELECTRONICS, 2014, 53 :428-439
[10]   Conducting polymer-based electrochemical biosensors for neurotransmitters: A review [J].
Moon, Jong-Min ;
Thapliyal, Neeta ;
Hussain, Khalil Khadim ;
Goyal, Rajendra N. ;
Shim, Yoon-Bo .
BIOSENSORS & BIOELECTRONICS, 2018, 102 :540-552