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A glucose oxidase electrode based on polypyrrole with polyanion/PEG/enzyme conjugate dopant

机译:基于聚吡咯和聚阴离子/ PEG /酶结合物掺杂剂的葡萄糖氧化酶电极

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This study investigated a new glucose sensor prepared by electrochemical polymerization of pyrrole with polyanion/poly(ethylene glycol) (PEG)/glucose oxidase (GOD) conjugate dopants. GOD was coupled to a strong polyanion, poly(2-acrylamido-2-methylpropane sulfonic acid) (AMPS) via PEG spacer to effectively and reproducibly immobilize GOD within a polypyrrole matrix onto a Pt electrode surface. PEGs with four different chain lengths (1000, 2000, 3000, and 4000) were used as spacers to study the spacer length effect on enzyme immobilization and electrode function. After conjugation, more than 90% of the GOD bioactivity was preserved and the bioactivity of the conjugated GOD increased with longer PEG spacers. The resulting polyanion/PEG/GOD conjugate was used as a dopant for electropolymerizing pyrrole. The activity of the immobilized enzyme on the electrode ranged from 119 to 209 mU cm(-2) and the bioactivity increased with the use of longer PEG spacers. The amperometric response of the enzyme electrode was linear up to 20 mM glucose concentration with a sensitivity ranging from 180 to 270 nA mM(-1) cm(-2). The kinetic parameters Michaelis-Menten constant (K-M(app)) and maximum current density (j(max)) depended on the amount of active enzyme, level of substrate diffusion, and PEG spacer length. An increase in the electrical charge passed during polymerization (thus, increasing polypyrrole thickness) to 255 mC cm(-2) increased the sensitivity of the enzyme electrode because of the greater amount of incorporated enzyme. However, although the amount of incorporated GOD continued to increase when the charge increased above 255 mC cm(-2), the sensitivity began to decline gradually. The condition for preparing the enzyme electrode was optimized at 800 mV potential with a dopant concentration of 1 mg ml(-1). (C) 2003 Published by Elsevier Science B.V. [References: 39]
机译:这项研究研究了通过吡咯与聚阴离子/聚乙二醇(PEG)/葡萄糖氧化酶(GOD)共轭掺杂物的电化学聚合反应制备的新型葡萄糖传感器。 GOD经由PEG间隔基与强聚阴离子聚(2-丙烯酰胺基-2-甲基丙烷磺酸)(AMPS)偶联,可有效且可重复地将聚吡咯基质内的GOD固定在Pt电极表面上。将具有四种不同链长(1000、2000、3000和4000)的PEG用作间隔基,以研究间隔基长度对酶固定和电极功能的影响。缀合后,超过90%的GOD生物活性得以保留,缀合的GOD的生物活性随更长的PEG间隔基而增加。所得的聚阴离子/ PEG / GOD共轭物用作电聚合吡咯的掺杂剂。固定在电极上的酶的活性范围为119至209 mU cm(-2),随着使用更长的PEG间隔子,生物活性增加。酶电极的安培响应在不超过20 mM葡萄糖浓度时呈线性,灵敏度范围为180至270 nA mM(-1)cm(-2)。动力学参数Michaelis-Menten常数(K-M(app))和最大电流密度(j(max))取决于活性酶的量,底物扩散的水平和PEG间隔物的长度。聚合过程中通过的电荷增加(因此,增加了聚吡咯的厚度)至255 mC cm(-2),这是因为加入了更多的酶,从而增加了酶电极的灵敏度。但是,尽管当电荷增加到255 mC cm(-2)以上时,掺入的GOD量继续增加,但是灵敏度开始逐渐下降。制备酶电极的条件在800 mV电势下进行了优化,掺杂浓度为1 mg ml(-1)。 (C)2003年由Elsevier Science B.V.出版[参考文献:39]

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