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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 >Exploiting electrostatic shielding-effect of metal nanoparticles to recognize uncharged small molecule affinity with label-free graphene electronic biosensor
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Exploiting electrostatic shielding-effect of metal nanoparticles to recognize uncharged small molecule affinity with label-free graphene electronic biosensor

机译:利用金属纳米颗粒的静电屏蔽效应,以识别无点状的小分子亲和力与无标签的石墨烯电子生物传感器

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摘要

Label-free electronic biosensors as the non-electrochemical analytical tools without requirement of sophisticated instrumentation have become attractive, although their application in competitive affinity sensing of uncharged small molecules is still hindered by a difficulty in the development of competing analogues. To break through this bottleneck, we report a novel analogue made by epitope-modified metal nanoparticles to enable the electronic signaling of small-molecule analyte recognition via competitive affinity. While the electronic signaling capability of metal nanoparticle analogues is demonstrated by a graphene field-effect transistor bioassay of small-molecule glucose as a proof-of-principle, interestingly, we discover a new electronic signaling mechanism in the metal nanoparticle affinity, different to the intuitive charge accumulation expectation. On the basis of Kelvin-probe force microscopic potential characterization and theoretical discussion, we fundamentally elucidated the signaling mechanism as a seldom used electrostatic shielding-effect, that is, in the analogue-receptor affinity, metal nanoparticles with the charge density lower than receptor biomolecules can reduce the collective electrical potential via charge dispersion. Further consider the convenient epitope-modifiability of metal nanoparticles, the easy-to-develop analogues for diverse target analyte might potentially be predictable in the future. And the application of label-free electronic biosensors for the competitive affinity bioassay of range extended small molecules may thus be promoted based on the electrostatic shielding-effect.
机译:无需精细仪器要求的无电化学分析工具作为非电化学分析工具的无电化学分析工具变得有吸引力,尽管它们在竞争性小分子的竞争性亲和力传感中的应用仍然受到竞争类似物的发展的困难。要突破这种瓶颈,我们报告了由表位改性金属纳米颗粒制成的新型类似物,以通过竞争性亲和力实现小分子分析物识别的电子信号传导。虽然金属纳米粒子类似物的电子信号传导能力通过小分子葡萄糖的石墨烯场效应晶体管生物测量剂作为原则上的原则,但我们发现了一种在金属纳米粒子亲和力的新电子信号传导机制,不同于直观的收费积累预期。基于Kelvin探测力的显微镜电位特征和理论讨论,我们从根本上阐明了信号机构,因为很少使用的静电屏蔽效应,即在模拟受体亲和力,金属纳米颗粒,金属纳米颗粒具有低于受体生物分子的电荷密度可以通过电荷分散减少集体电位。进一步考虑了金属纳米颗粒的方便展位 - 变性性,用于各种目标分析物的易于发展的类似物可能会在未来可预测。因此,基于静电屏蔽效应,可以促进用于竞争性亲和力生物测定的标签电子生物传感器的应用。

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