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Label-Free and Ultrasensitive Electrochemical DNA Biosensor Based on Urchinlike Carbon Nanotube-Gold Nanoparticle Nanoclusters

机译:基于核素状碳纳米管 - 金纳米粒子纳米颗粒的无标记和超细电化学DNA生物传感器

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摘要

Nanomaterials have been extensively utilized in biosensing systems for highly sensitive and selective detection of a variety of biotargets. In this work, a facile, label-free, and ultrasensitive electrochemical DNA biosensor has been developed, based on "urchinlike" carbon nanotube-gold nanoparticle (CNT-AuNP AuNP) nanoclusters, for signal amplification. Specifically, electrochemical polymerization of dopamine (DA) was employed to modify a gold electrode for immobilization of DNA probes through the Schiff base reaction. Upon sensing the target nucleic acid, the dual-DNA (reporter and linker) functionalized AuNPs were introduced into the sensing system via DNA hybridization. Afterward, the end-modified single-wall carbon nanotubes with DNA (SWCNT-DNA) were attached to the surface of the AuNPs through linker-DNA hybridization that formed 3D radial nanoclusters, which generated a remarkable electrochemical response. Because of the larger contact surface area and super electronic conductivity of CNT-AuNP clusters, this novel designed 3D radial nanostructure exhibits an ultrasensitive detection of DNA, with a detection limit of 5.2 fM (a linear range of from 0.1 pM to 10 nM), as well as a high selectivity that discriminates single-mismatched DNA from fully matched target DNA under optimal conditions. This biosensor, which combines the synergistic properties of both CNTs and AuNPs, represents a promising signal amplification strategy for achieving a sensitive biosensor for DNA detection and diagnostic applications.
机译:在生物传感系统中广泛使用纳米材料,用于高度敏感和选择性检测各种生物靶案。在这项工作中,基于“Urchinlike”碳纳米管 - 金纳米粒子(CNT-AUNP AUNP)纳米团簇,开发了一种容易,无标记和超声电化学DNA生物传感器,用于信号放大。具体地,采用多巴胺(DA)的电化学聚合来改变金电极以通过Schiff基础反应固定DNA探针。在感测到靶核酸后,通过DNA杂交将官能化AUNP的双DNA(报告和接头)引入传感系统。之后,通过形成3D径向纳米能器的接头-DNA杂交,将具有DNA(SWCNT-DNA)的末端改性的单壁碳纳米管(SWCNT-DNA)连接到AUNP的表面上,这产生了3D径向纳米能器,这产生了显着的电化学响应。由于接触表面区域和CNT-AUNP簇的超级电子电导率,这种新颖的3D径向纳米结构表现出DNA的超敏检测,检测限为5.2 fm(线性范围为0.1pm至10 nm),除了在最佳条件下将单错靶DNA与完全匹配的靶DNA判别的高选择性。这种结合CNT和AUNP的协同性质的生物传感器代表了有希望的信号放大策略,用于实现DNA检测和诊断应用的敏感生物传感器。

著录项

  • 来源
    《Analytical chemistry》 |2020年第7期|共8页
  • 作者单位

    Missouri Univ Sci &

    Technol Dept Chem Rolla MO 65409 USA;

    Missouri Univ Sci &

    Technol Dept Chem Rolla MO 65409 USA;

    NIST Mat Sci &

    Engn Div Gaithersburg MD 20899 USA;

    Missouri Univ Sci &

    Technol Dept Chem Rolla MO 65409 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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