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Employing FAD-dependent glucose dehydrogenase within a glucose/oxygen enzymatic fuel cell operating in human serum

机译:在人血清中运行的葡萄糖/氧气酶燃料电池中采用FAD依赖性葡萄糖脱氢酶

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Flavin adenine dinucleotide-dependent glucose dehydrogenase (FAD-GDH) is emerging as an oxygen-insensitive alternative to glucose oxidase (GOx) as the biocatalyst for bioelectrodes and bioanodes in glucose sensing and glucose enzymatic fuel cells (EFCs). Glucose EFCs, which utilize oxygen as the oxidant and final electron acceptor, have the added benefit of being able to be implanted within living hosts. These can then produce electrical energy from physiological glucose concentrations and power internal or external devices. EFCs were prepared with FAD-GDH and bilirubin oxidase (BOx) to evaluate the suitability of FAD-GDH within an implantable setting. Maximum current and power densities of 186.6 +/- 7.1 mu A cm(-2) and 39.5 +/- 1.3 mu W cm(-2) were observed when operating in human serum at 21 degrees C, which increased to 285.7 +/- 31.3 mu A cm(-2) and 57.5 +/- 5.4 mu W cm(-2) at 37 degrees C. Although good stability was observed with continual near-optimal operation of the EFCs in human serum at 21 degrees C for 24 h, device failure was observed between 13-14 h when continually operated at 37 degrees C. (C) 2015 Elsevier B.V. All rights reserved.
机译:黄素腺嘌呤二核苷酸依赖性葡萄糖脱氢酶(FAD-GDH)作为葡萄糖氧化酶(GOx)的一种对氧气不敏感的替代物正在出现,它是葡萄糖传感和葡萄糖酶燃料电池(EFC)中生物电极和生物阳极的生物催化剂。利用氧气作为氧化剂和最终电子受体的葡萄糖EFC具有能够植入活体宿主体内的额外好处。然后这些可以从生理葡萄糖浓度产生电能,并为内部或外部设备供电。用FAD-GDH和胆红素氧化酶(BOx)制备EFC,以评估FAD-GDH在可植入环境中的适用性。在21°C的人血清中操作时,观察到的最大电流和功率密度分别为186.6 +/- 7.1μAcm(-2)和39.5 +/- 1.3μWcm(-2),升高至285.7 +/-在37摄氏度时为31.3μA cm(-2)和57.5 +/- 5.4μW cm(-2)。尽管在人血清中在21摄氏度持续24 h连续不断近乎最佳地操作EFC,观察到良好的稳定性,在37摄氏度下连续运行时,在13-14小时之间观察到设备故障。(C)2015 Elsevier BV保留所有权利。

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