首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >A highly sensitive label-free electrochemical aptasensor for interferon-gamma detection based on graphene controlled assembly and nuclease cleavage-assisted target recycling amplification
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A highly sensitive label-free electrochemical aptasensor for interferon-gamma detection based on graphene controlled assembly and nuclease cleavage-assisted target recycling amplification

机译:基于石墨烯控制的组装和核酸酶裂解辅助的靶标回收扩增的用于干扰素-γ检测的高度灵敏的无标记电化学适体传感器

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摘要

We report here a highly sensitive and label-free electrochemical aptasensing technology for detection of interferon-gamma (IFN-γ) based on graphene controlled assembly and enzyme cleavage-assisted target recycling amplification strategy. In this work, in the absence of IFN-γ, the graphene could not be assembled onto the 16-mercaptohexadecanoic acid (MHA) modified gold electrode because the IFN-γ binding aptamer was strongly adsorbed on the graphene due to the strong π-π interaction. Thus the electronic transmission was blocked (eT OFF). However, the presence of target IFN-γ and DNase I led to desorption of aptamer from the graphene surface and further cleavage of the aptamer, thereby releasing the IFN-γ. The released IFN-γ could then re-attack other aptamers on the graphene, resulting in the successive release of the aptamers from the graphene. At the same time, the "naked" graphene could be assembled onto the MHA modified gold electrode with hydrophobic interaction and π-conjunction, mediating the electron transfer between the electrode and the electroactive indicator. Then, measurable electrochemical signals were generated (eT ON), which was related to the concentration of the IFN-γ. By taking advantages of graphene and enzyme cleavage-assisted target recycling amplification, the developed label-free electrochemical aptasensing technology showed a linear response to concentration of IFN-γ range from 0.1 to 0.7. pM. The detection limit of IFN-γ was determined to be 0.065. pM. Moreover, this aptasensor shows good selectivity toward the target in the presence of other relevant proteins. Our strategy thus opens new opportunities for label-free and amplified detection of other kinds of proteins.
机译:我们在这里报告了一种基于石墨烯控制的组装和酶裂解辅助的靶标回收扩增策略检测干扰素-γ(IFN-γ)的高灵敏度和无标记的电化学适体技术。在这项工作中,在没有IFN-γ的情况下,石墨烯无法组装到16-巯基十六烷酸(MHA)修饰的金电极上,因为IFN-γ结合适体由于强大的π-π被强烈吸附在石墨烯上相互作用。因此电子传输被阻止(eT OFF)。然而,靶IFN-γ和DNase I的存在导致适体从石墨烯表面解吸并进一步裂解适体,从而释放出IFN-γ。然后,释放的IFN-γ可以重新攻击石墨烯上的其他适体,从而导致适体从石墨烯中连续释放。同时,“裸”石墨烯可以通过疏水作用和π结组装在MHA修饰的金电极上,介导电极和电活性指示剂之间的电子转移。然后,产生可测量的电化学信号(eT ON),这与IFN-γ的浓度有关。通过利用石墨烯和酶裂解辅助的靶标循环扩增,开发的无标记电化学适体技术对IFN-γ的浓度表现出线性响应,范围从0.1到0.7。下午。 IFN-γ的检出限为0.065。下午。此外,在其他相关蛋白质的存在下,该适体传感器对靶标显示出良好的选择性。因此,我们的策略为无标记和其他种类蛋白质的扩增检测提供了新的机会。

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