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基于分子印迹层结合在导电聚合物上的电位型非酶葡萄糖传感器。

A potentiometric non-enzymatic glucose sensor using a molecularly imprinted layer bonded on a conducting polymer.

机构信息

Department of Chemistry, Institute of Bio Physio Sensor Technology (IBST), Pusan National University, Busan 46241, South Korea.

Busan center, Korea Basic Science Institute, Busan 46742, South Korea.

出版信息

Biosens Bioelectron. 2017 May 15;91:276-283. doi: 10.1016/j.bios.2016.12.046. Epub 2016 Dec 21.

Abstract

A non-enzymatic potentiometric glucose sensor for the determination of glucose in the micomolar level in saliva was developed based on a molecularly imprinted polymer (MIP) binding on a conducting polymer layer. A MIP containing acrylamide, and aminophenyl boronic acid, as a host molecule to glucose, was immobilized on benzoic acid-functionalized poly(terthiophene) (pTBA) by the amide bond formation onto a gold nanoparticles deposited-screen printed carbon electrode (pTBA/AuNPs/SPCE). Aromatic boronic acid was incorporated into the MIP layer to stably capture glucose and create a potentiometric signal through the changed pKa value of polymer film by the formation of boronate anion-glucose complex with generation of H ions by the cis-diol reaction. Reversible binding and extraction of glucose on the sensor surface was observed using a quartz crystal microbalance. Each layer of the sensor probe was characterized by cyclic voltammetry, electrochemical impedance spectroscopy, X-ray photoelectron spectroscopy, and atomic force microscopy. The potentiometric response at the optimized conditions exhibited a wide linear dynamic range of 3.2×10 to 1.0×10M, with a detection limit of 1.9 (±0.15)×10M. The sensor probe revealed an excellent selectivity and sensitivity for glucose compared to other saccharides. In addition, the reliability of the proposed glucose sensor was evaluated in physiological fluid samples of saliva and finger prick blood.

摘要

基于结合在导电聚合物层上的分子印迹聚合物(MIP),开发了一种用于测定唾液中微摩尔级别的葡萄糖的非酶电化学生物传感器。MIP 中含有丙烯酰胺和氨苯基硼酸,作为葡萄糖的主体分子,通过酰胺键形成固定在苯甲酸功能化聚(噻吩)(pTBA)上(pTBA/AuNPs/SPCE)。芳香硼酸被掺入 MIP 层中,通过形成硼酸阴离子-葡萄糖复合物,通过顺二醇反应产生氢离子,来稳定地捕获葡萄糖并通过聚合物膜的 pKa 值变化产生电化学生物传感器信号。通过石英晶体微天平观察到传感器表面上葡萄糖的可逆结合和提取。传感器探针的每个层都通过循环伏安法、电化学阻抗谱、X 射线光电子能谱和原子力显微镜进行了表征。在优化条件下的电化学生物传感器响应呈现出 3.2×10 到 1.0×10M 的宽线性动态范围,检测限为 1.9(±0.15)×10M。与其他糖类相比,该传感器探针对葡萄糖表现出优异的选择性和灵敏度。此外,还在唾液和指尖采血的生理流体样本中评估了所提出的葡萄糖传感器的可靠性。

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