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首页> 外文期刊>Journal of nanoscience and nanotechnology >Development of Biofuel Cell Using a Complex of Highly Oriented Immobilized His-Tagged Enzyme and Carbon Nanotube Surface Through a Pyrene Derivative
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Development of Biofuel Cell Using a Complex of Highly Oriented Immobilized His-Tagged Enzyme and Carbon Nanotube Surface Through a Pyrene Derivative

机译:使用芘衍生物的高度定向固定的His标记的酶和碳纳米管表面的复合物的开发生物燃料电池

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摘要

For increasing the output of biofuel cells, increasing the cooperation between enzyme reaction and electron transfer on the electrode surface is essential. Highly oriented immobilization of enzymes onto a carbon nanotube (CNT) with a large specific surface area and excellent conductivity would increase the potential for their application as biosensors and biofuel cells, by utilizing the electron transfer between the electrode-molecular layer. In this study, we prepared a CNT-enzyme complex with highly oriented immobilization of enzyme onto the CNT surface. The complex showed excellent electrical characteristics, and could be used to develop biodevices that enable efficient electron transfer. Multi-walled carbon nanotubes (MWCNT) were dispersed by pyrene butyric acid N-hydroxysuccinimide ester, and then N-(5-amino-1-carboxypentyl) iminodiacetic acid (AB-NTA) and NiCl2 were added to modify the NTA-Ni2+ complex on the CNT surface. Pyrroloquinoline quinone (PQQ)-dependent glucose dehydrogenase (GDH) was immobilized on the CNT surface through a genetically introduced His-tag. Formation of the MWCNT-enzyme complex was confirmed by monitoring the catalytic current electrochemically to indicate the enzymatic activity. PQQ-GDH was also immobilized onto a highly ordered pyrolytic graphite surface using a similar process, and the enzyme monolayer was visualized by atomic force microscopy to confirm its structural properties. A biofuel cell was constructed using the prepared CNT-enzyme complex and output evaluation was carried out. As a result, an output of 32 mu W/cm(2) could be obtained without mediators.
机译:为了增加生物燃料细胞的输出,增加酶反应与电极表面上的电子转移之间的合作是必需的。通过利用电极 - 分子层之间的电子传递,将酶的高度取向固定在具有大的比表面积和优异的导电性的碳纳米管(CNT)上的碳纳米管(CNT)将其作为生物传感器和生物燃料电池增加。在这项研究中,我们制备了一种CNT-酶络合物,其具有高度取向的酶固定到CNT表面上。该复合物显示出优异的电气特性,并且可用于开发能够有效的电子转移的生物渗起。通过芘丁酸N-羟基琥珀酰亚胺酯分散多壁碳纳米管(MWCNT),然后加入N-(5-氨基-1-羧基甲酯)亚单乙酸(AB-NTA)和NiCl 2以改性NTA-Ni2 +复合物在CNT表面上。吡咯喹啉醌(PQQ) - 依赖性葡萄糖脱氢酶(GDH)通过遗传引入的HIS标签固定在CNT表面上。通过监测电化学催化电流来指示酶活性的催化电流来确认MWCNT-酶复合物的形成。使用类似的方法,将PQQ -GDH固定在高度有序的热解石墨表面上,并通过原子力显微镜观察酶单层以确认其结构性。使用制备的CNT-酶复合物构建生物燃料电池,并进行输出评价。结果,可以在没有介质的情况下获得32μW/ cm(2)的输出。

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