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Gold-Coated M13 Bacteriophage as a Template for Glucose Oxidase Biofuel Cells with Direct Electron Transfer

机译:金涂层的M13噬菌体作为直接电子转移葡萄糖氧化酶生物燃料电池的模板

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Glucose oxidase-based biofuel cells are a promising source of alternative energy for small device applications, but still face the challenge of achieving robust electrical contact between the redox enzymes and the current collector. This paper reports on the design of an electrode consisting of glucose oxidase covalently attached to gold nanoparticles that are assembled onto a genetically engineered M13 bacteriophage using EDC-NHS chemistry. The engineered phage is modified at the pill protein to attach onto a gold substrate and serves as a high-surface-area template. The resulting "nanomesh" architecture exhibits direct electron transfer (DET) and achieves a higher peak current per unit area of 1.2 mA/cm(2) compared to most other DET attachment schemes. The final enzyme surface coverage on the electrode was calculated to be approximately 4.74 x 10(-8) mol/cm(2), which is a significant improvement over most current glucose oxidase (GOx) DET attachment methods.
机译:基于葡萄糖氧化酶的生物燃料电池是小型设备应用中有希望的替代能源,但仍面临在氧化还原酶和集电器之间实现牢固电接触的挑战。本文报道了一种电极设计,该电极由共价附着于金纳米颗粒的葡萄糖氧化酶组成,该电极使用EDC-NHS化学方法组装到基因工程M13噬菌体上。改造后的噬菌体在药丸蛋白上进行修饰以附着在金底物上,并用作高表面积模板。与大多数其他DET固定方案相比,最终的“纳米”结构展现了直接电子转移(DET)并实现了每单位面积1.2 mA / cm(2)的更高峰值电流。经计算,电极上最终的酶表面覆盖率约为4.74 x 10(-8)mol / cm(2),相对于大多数当前的葡萄糖氧化酶(GOx)DET附着方法而言,这是一个重大改进。

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