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电纳米线酶用于探针修饰和传感器制造。

Electrically nanowired-enzymes for probe modification and sensor fabrication.

机构信息

Institute of Food Science and Technology, National Taiwan University, No.1, Roosevelt Road, Section 4, Taipei, Taiwan, ROC.

Institute of Food Science and Technology, National Taiwan University, No.1, Roosevelt Road, Section 4, Taipei, Taiwan, ROC.

出版信息

Biosens Bioelectron. 2018 Dec 15;121:223-235. doi: 10.1016/j.bios.2018.09.018. Epub 2018 Sep 6.

Abstract

Enzymes are highly specific and selective due to their precise, intricate three-dimensional catalytic- structure. Electron transfer in enzymes normally occurs through an active-metal centers or tunneling events that are highly insulated by the surrounding globular protein structure. In case of electrochemically active enzymes/proteins, the distance between the redox-active cofactor and the electrode surface plays key role during direct communication. Therefore, the long electron-tunneling distance can be overcome by introducing mobile redox mediators such as nanostructures specially nanowires which can diffuse into and out of the enzyme active site, ferrying reducing or oxidizing equivalents with them. Therefore, nanowire-conjugated enzymes have gained great interest in the development of biosensor devices and other electrocatalytic-biological applications. Herein we present a comprehensive review about the electrochemical enzyme-based sensor using nanowires. Over the past decade, nanowires were investigated as a versatile platform for various applications including sensors and biosensors because of their high aspect ratio and a high surface-to-volume ratio. This review aimed to summarize some of the recent developments in the enzyme based sensor research that have been achieved with various metallic and non-metallic one-dimensional nanostructure i.e. nanowires. Due to low or no toxicity and biocompatibility, enzymes conjugated with nanowires are still highly specific, sensitive and biologically active. This review demonstrates the potential usability of nanowired-enzymes for the bioanalytical applications. The review includes various types of nanowires, mode of the enzyme integration or immobilization methodologies, probe modification, biosensor fabrication and real or spiked sample testing. Biosensor parameters such as linear range and sensitivity, selectivity and detection limit of reported sensors were also considered herein. We also introduce some of the new nanowire materials which have not yet been used for biosensing or biosensor application. The limitations, challenges and prospects for the use of nanowired-enzymes in electrochemical and other real-time sensing systems as well as fabrication technologies are also discussed in this review.

摘要

酶由于其精确、复杂的三维催化结构而具有高度的特异性和选择性。电子在酶中的转移通常通过活性金属中心或隧穿事件发生,这些事件被周围的球状蛋白质结构高度隔离。在电化学活性酶/蛋白质的情况下,在直接通讯过程中,氧化还原辅助因子与电极表面之间的距离起着关键作用。因此,可以通过引入可移动的氧化还原介体(如纳米结构,特别是纳米线)来克服长电子隧穿距离,这些纳米结构可以扩散到酶活性位点内外,并携带还原或氧化当量。因此,纳米线共轭酶在生物传感器器件和其他电催化-生物学应用的发展中引起了极大的兴趣。本文全面综述了基于纳米线的电化学酶传感器。在过去的十年中,由于高纵横比和高表面积与体积比,纳米线被研究为各种应用(包括传感器和生物传感器)的多功能平台。本综述旨在总结一些最近在基于酶的传感器研究方面取得的进展,这些进展是通过各种金属和非金属一维纳米结构(即纳米线)实现的。由于低毒性或无毒性和生物相容性,与纳米线共轭的酶仍然具有高度的特异性、敏感性和生物活性。本综述展示了纳米线酶在生物分析应用中的潜在可用性。该综述包括各种类型的纳米线、酶的整合或固定化方法、探针修饰、生物传感器的制造以及实际或加标样品的测试。还考虑了报道的传感器的生物传感器参数,例如线性范围和灵敏度、选择性和检测限。我们还介绍了一些尚未用于生物传感或生物传感器应用的新型纳米线材料。本文还讨论了在电化学和其他实时传感系统以及制造技术中使用纳米线酶的局限性、挑战和前景。

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