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通过葡萄糖氧化酶纯化改进的葡萄糖/氧气无膜生物燃料电池。

An improved glucose/O2 membrane-less biofuel cell through glucose oxidase purification.

作者信息

Gao Feng, Courjean Olivier, Mano Nicolas

机构信息

Université de Bordeaux, Centre de Recherche Paul Pascal, UPR 8641-CNRS, Avenue Albert Schweitzer, Pessac 33600, France.

出版信息

Biosens Bioelectron. 2009 Oct 15;25(2):356-61. doi: 10.1016/j.bios.2009.07.015. Epub 2009 Jul 28.

DOI:10.1016/j.bios.2009.07.015
PMID:19679461
Abstract

A key objective in any bioelectrochemical systems is to improve the current densities and mass transport limitation. Most of the work is focused on increasing the specific surface of the electrodes or improving the electron transfer between enzymes and electrodes. However, nothing is said about the comparison of purified and non-purified enzyme and their effects on the biosensor efficiency. To illustrate the effect of the enzyme purity, we studied the widely used commercial Glucose Oxidase (GOx) from Aspergillus niger that we are using in our miniature membrane-less biofuel cell. Our results indicate that even if additional compounds contained in the lyophilized enzyme powder do not interfere with its intrinsic catalytic properties, they could prevent a good electron transfer between the enzyme and the electrode surface. By introducing a purified glucose oxidase into a bioelectrocatalyst immobilized on an electrode surface, we show that we can increase the interaction between the enzyme and the redox polymer, forming a better homogenous, leather like gel. At 5mM glucose concentration and under oxygen atmosphere, the current is three-fold higher when using a purified enzyme than it is when using a non-purified enzyme. Built with this novel anode, we showed that a miniature implantable membrane-less glucose-O(2) biofuel cell could produce, under air, twice the power density that is usually obtained when using a non-purified GOx.

摘要

任何生物电化学系统的一个关键目标是提高电流密度并克服传质限制。大多数工作都集中在增加电极的比表面积或改善酶与电极之间的电子转移。然而,关于纯化酶和未纯化酶的比较及其对生物传感器效率的影响却鲜有提及。为了说明酶纯度的影响,我们研究了我们在微型无膜生物燃料电池中使用的、广泛应用的源自黑曲霉的商业葡萄糖氧化酶(GOx)。我们的结果表明,即使冻干酶粉中含有的其他化合物不会干扰其固有催化特性,但它们可能会阻碍酶与电极表面之间良好的电子转移。通过将纯化的葡萄糖氧化酶引入固定在电极表面的生物电催化剂中,我们发现可以增强酶与氧化还原聚合物之间的相互作用,形成更好的均匀的、类似皮革的凝胶。在5mM葡萄糖浓度和氧气氛围下,使用纯化酶时的电流比使用未纯化酶时高三倍。基于这种新型阳极构建的微型可植入无膜葡萄糖 - O₂生物燃料电池,在空气中产生的功率密度是使用未纯化GOx时通常获得的两倍。

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