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Graphene based field-effect transistor biosensors functionalized using gas-phase synthesized gold nanoparticles

机译:基于石墨烯的场效应晶体管生物传感器,使用气相合成的金纳米粒子官能化

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摘要

Research has focused on graphene for developing the next generation of label-free biosensors, capable of highly sensitive and specific detection of DNA or other biomolecules. The binding of charged analytes to the one-atom thick layer of graphene can greatly affect its electronic properties. However, graphene is highly chemically inert, thus surface functionalization through chemical treatment is typically necessary to immobilize receptors of the target biological analyte on the graphene. In this work, we use gas-phase synthesized gold nanoparticles (Au NPs) to functionalize and bind a DNA aptamer to the graphene surface. The graphene is employed in a liquid gated field-effect transistor (FET) configuration to detect the hybridization of the complementary DNA strand, as well as the protein streptavidin, at attomolar level (aM, 10~(-18) mol L~(-1)). The sensor shows a high dynamic detecting range from aM to picomolar (pM) levels (10~(18) to 10~(-12) mol L~(-1)), can discriminate between a complementary strand and a single nucleotide polymorphism (SNP) containing strand, and achieves a detection limit as low as 15 aM. The high detection limit suggests that decorating biosensors with Au NPs synthesized from magnetron sputtering inert gas condensing technique is a promising method for biosensor functionalization, particularly for larger-area sensors that employ two-dimensional materials such as graphene.
机译:研究专注于石墨烯,用于开发下一代无标签的生物传感器,能够高度敏感和特异性检测DNA或其他生物分子。带电分析物与一个原子厚石墨烯的结合可以极大地影响其电子性质。然而,石墨烯是高度化学惰性的,因此通过化学处理的表面官能化通常是必需的,以固定靶生物分析物的受体在石墨烯上。在这项工作中,我们使用气相合成的金纳米颗粒(Au nps)来官能化并将DNA适体与石墨烯表面结合。石墨烯在液面浇口场效应晶体管(FET)构型中,以检测互补DNA链的杂交,以及蛋白链霉抗生物素蛋白,在AttoMolar水平(Am,10〜(-18)mol L〜( - 1))。传感器显示从AM到PICOMOLAR(PM)水平的高动态检测范围(10〜(18)至10〜(-12)摩尔L〜(-1)),可以区分互补链和单个核苷酸多态性( SNP)含有股线,并实现低至15A的检测限。高检测极限表明,用磁控溅射惰性气体冷凝技术合成的具有Au NP的生物传感器是用于生物传感器官能化的有希望的方法,特别是对于采用诸如石墨烯的二维材料的较大面积传感器。

著录项

  • 来源
    《Sensors and Actuators》 |2020年第10期|128432.1-128432.7|共7页
  • 作者单位

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nucleic Acid Chemistry and Engineering Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nucleic Acid Chemistry and Engineering Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

    Nanoparticles by Design Unit Okinawa Institute of Science and Technology (OIST) Graduate University 1919-1 Tancha Onna-Son Okinawa 904-0495 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biosensor; Graphene; DNA; Gold nanoparticle functionalization; Gas-phase synthesis; Streptavidin;

    机译:生物传感器;石墨烯;脱氧核糖核酸;金纳米粒子官能化;气相合成;链霉抗生物素蛋白;

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