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Thermophilic Talaromyces emersonii Flavin AdenineDinucleotide-Dependent Glucose Dehydrogenase Bioanodefor Biosensor and Biofuel Cell Applications

机译:嗜热嗜热Talaromyces emersonii黄素腺嘌呤二核苷酸依赖性葡萄糖脱氢酶生物阳极用于生物传感器和生物燃料电池应用

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摘要

Flavin adenine dinucleotide (FAD)-dependent glucose dehydrogenase (GDH) was identified and cloned from thermophilic filamentous fungi Talaromyces emersonii using the homology cloning method. A direct electron transfer bioanode composed of T. emersonii FAD-GDH and a single-walled carbon nanotube was produced. Enzymes from thermophilic microorganisms generally have low activity at ambient temperature; however, the T. emersonii FAD-GDH bioanode exhibits a large anodic current due to the enzymatic reaction (1 mA cm–2) at ambient temperature. Furthermore, the T. emersonii FAD-GDH bioanode worked at 70 °C for 12 h. This is the first report of a bioanode with a glucose-catalyzing enzyme from a thermophilic microorganism that has potential for biosensor and biofuel cell applications. In addition, we demonstrate how the glycoforms of T. emersonii FAD-GDHs expressed by various hosts influence the electrochemical properties of the bioanode.
机译:鉴定出黄素腺嘌呤二核苷酸(FAD)依赖性葡萄糖脱氢酶(GDH),并使用同源克隆方法从嗜热丝状真菌Talaromyces emersonii克隆。制备了由艾默森氏菌FAD-GDH和单壁碳纳米管组成的直接电子转移生物阳极。来自嗜热微生物的酶通常在环境温度下具有低活性。然而,由于环境温度下的酶促反应(1 mA cm –2 ),艾默生球菌FAD-GDH生物阳极呈现出较大的阳极电流。此外,艾默生T. emersonii FAD-GDH生物阳极在70°C下工作12 h。这是具有来自嗜热微生物的葡萄糖催化酶的生物阳极的首次报道,该酶具有生物传感器和生物燃料电池应用的潜力。另外,我们证明了由各种宿主表达的艾美氏球菌FAD-GDHs的糖型如何影响生物阳极的电化学性质。

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