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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Highly Sensitive Glucose Biosensor Based on One-Pot Biochemical Preoxidation and Electropolymerization of 2,5-Dimercapto-1,3,4-thiadiazole in Glucose Oxidase-Containing Aqueous Suspension
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Highly Sensitive Glucose Biosensor Based on One-Pot Biochemical Preoxidation and Electropolymerization of 2,5-Dimercapto-1,3,4-thiadiazole in Glucose Oxidase-Containing Aqueous Suspension

机译:基于一锅生化预氧化和2,5-二巯基-1,3,4-噻二唑在含葡萄糖氧化酶的水悬浮液中电聚合的高灵敏度葡萄糖生物传感器

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A novel and high-performance biosensing platform was prepared on the basis of one-pot biochemical preoxidation and electropolymerization of monomer (BPEM) for high-load and high-activity immobilization of enzymes. As representative materials here, 2,5-dimercapto-1,3,4-fhiadiazole (DMcT) was used as the monomer, glucose oxidase (GOx) was used as the model enzyme, and enzymatically generated H2O2 (EG-H2O2) in the presence of glucose was used as the preoxidant. In the BPEM protocol, glucose was added to a pH 7.0 phosphate buffer suspension containing ultrasonically dispersed DMcT and GOx, in order to enzymatically generate H2O2, which preoxidized DMcT to DMcT oligomers/polymer (DMcTO) and thus led to the formation of DMcTO—GOx composites with a great deal of GOx entrapped; the composites were then co-electrodeposited with poly(DMcT) on a Au electrode. For comparison, the enzyme immobilization was also conducted by a preoxidation-free conventional electropolymerization protocol (CEP), as well as a chemical preoxidation and electropolymerization of monomer (CPEM) protocol with externally added H2O2 (EA-H2O2) as the preoxidant. The glucose biosensors constructed by the BPEM and CPEM protocols exhibited detection sensitivities enhanced by 119 and 88 times, respectively, compared to that constructed by the CEP protocol, as well as limits of detection lowered by ca. 2 orders of magnitude. The higher sensitivity of the enzyme electrode prepared by the BPEM protocol compared to that prepared by the CPEM protocol is probably due to the improved proximity of biochemical preoxidation around the enzyme molecules and thus a larger enzyme load. The electrochemical quartz crystal microbalance technique was used to investigate various electrode modification processes, which also revealed that poly(DMcT) could be cathodically detached from the electrode surface, favorably enabling the electrochemical regeneration of the electrode substrate. The proposed BPEM strategy is recommended for wide biosensing and biocatalysis applications based on many other polymers/ enzymes.
机译:在单体一锅生化预氧化和电聚合(BPEM)的基础上,制备了一种新型的高性能生物传感平台,用于酶的高负载和高活性固定化。作为此处的代表性材料,将2,5-二巯基-1,3,4-噻二唑(DMcT)用作单体,将葡萄糖氧化酶(GOx)用作模型酶,并在酶解过程中酶促生成H2O2(EG-H2O2)。葡萄糖的存在用作预氧化剂。在BPEM协议中,将葡萄糖添加到包含超声分散的DMcT和GOx的pH 7.0磷酸盐缓冲液悬浮液中,以酶法生成H2O2,该酶将DMcT预氧化为DMcT低聚物/聚合物(DMcTO),从而导致形成DMcTO-GOx夹有大量GOx的复合材料;然后将复合材料与聚(DMcT)共电沉积在金电极上。为了进行比较,还通过无预氧化的常规电聚合规程(CEP)以及以外部添加的H2O2(EA-H2O2)作为预氧化剂的单体的化学预氧化和电聚合(CPEM)规程进行酶固定化。与由CEP协议构建的葡萄糖生物传感器相比,由BPEM和CPEM协议构建的葡萄糖生物传感器的检测灵敏度分别提高了119倍和88倍,并且检测限降低了约3倍。 2个数量级。通过BPEM协议制备的酶电极与通过CPEM协议制备的酶电极相比,灵敏度更高,可能是由于生化预氧化酶在酶分子周围的亲近性提高,因此酶的负载量更大。电化学石英晶体微天平技术用于研究各种电极修饰过程,这也表明聚(DMcT)可以从电极表面阴极脱落,有利于电极基板的电化学再生。建议将建议的BPEM策略用于基于许多其他聚合物/酶的广泛生物传感和生物催化应用。

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