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Covalent Attachment of Biomacromolecules to Plasma-Patterned and Functionalized Carbon Nanotube-Based Devices for Electrochemical Biosensing

机译:生物大分子共价附着在基于等离子体的功能化碳纳米管电化学生物传感设备上

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摘要

The interface between biomacromolecules and carbon nanotubes (CNTs) is of critical importance in developing effective techniques that provide CNTs with both biomolecular recognition and signal transduction through immobilization. However, the chemical inertness of CNT surfaces poses an obstacle to wider implementation of CNTs in bioanalytical applications. In this paper, we present a review of our recent research activities related to the covalent attachment of biomacromolecules to plasma-patterned and functionalized carbon nanotube films and their application to the fabrication of electrochemical biosensing devices. The SWCNT films were spray-deposited onto a miniaturized three-electrode system on a glass substrate and activated using highly purified atomic oxygen generated in radiofrequency plasma; this introduced oxygen-containing functional groups into the SWCNT surface without fatal loss of the original physicochemical properties of the CNTs. The carboxylated SWCNT electrodes were then selectively modified via amidation or esterification for covalent immobilization of the biomacromolecules. The plasma-treated SWCNT-based sensing electrode had an approximately six times larger effective area than the untreated SWCNT-based electrode, which significantly amplified the amperometric electrochemical signal. Finally, the efficacy of plasma-functionalized SWCNT (pf-SWCNT) as a biointerface was examined by immobilizing glucose oxidase, Legionella pneumophila (L. pneumophila)-specific antibodies, L. pneumophila-origmated DNAs, and thrombin-specific aptamers on the pf-SWCNT-based three-electrode devices. The pf-SWCNT films were found to support direct covalent immobilization of the above-listed biomacromolecules on the films and to thereby overcome the many drawbacks typically associated with simple physisorption. Thus, pf-SWCNT sensing electrodes on which biomacromolecules were covalently immobilized were found to be chemically stable and have a long lifetime.
机译:生物大分子与碳纳米管(CNT)之间的界面在开发有效的技术方面至关重要,该技术可为CNT提供生物分子识别和固定化信号转导。但是,CNT表面的化学惰性对生物分析应用中CNT的广泛实施构成了障碍。在本文中,我们介绍了与生物大分子共价附着于等离子体图案化和功能化的碳纳米管薄膜及其在电化学生物传感装置制造中的应用有关的最新研究活动。将SWCNT薄膜喷涂到玻璃基板上的微型三电极系统上,并使用在射频等离子体中产生的高度纯化的原子氧进行活化;这样就将含氧官能团引入了SWCNT表面,而不会致命地损失CNT的原始物理化学性质。然后通过酰胺化或酯化选择性地修饰羧化的SWCNT电极,以共价固定生物大分子。经过等离子体处理的基于SWCNT的传感电极的有效面积约为未经处理的基于SWCNT的电极的有效面积的六倍,从而显着放大了电化学电化学信号。最后,通过将葡萄糖氧化酶,嗜肺军团菌(L. pneumophila)特异性抗体,嗜肺杆菌(L. pneumophila)感染的DNA和凝血酶特异性适体固定在pf上,检查了血浆功能化SWCNT(pf-SWCNT)作为生物界面的功效。 -基于SWCNT的三电极设备。发现pf-SWCNT薄膜支持将上面列出的生物大分子直接共价固定在薄膜上,从而克服了通常与简单的物理吸附有关的许多缺点。因此,发现其上共价固定了生物大分子的pf-SWCNT传感电极化学稳定,使用寿命长。

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