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Capping Ligand Size-Dependent LSPR Property Based on DNA Nanostructure-Mediated Morphological Evolution of Gold Nanorods for Ultrasensitive Visualization of Target DNA

机译:基于DNA纳米结构介导的金纳米杆介导的金纳米杆的形态演化的覆盖配体尺寸依赖性LSPR属性,用于对靶DNA的超声可视化

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摘要

Systematically tuning the structures and properties of noble-metal nanoparticles through biomolecule-mediated overgrowth is of significant importance for their applications in biosensing and imaging. Herein thiolated biomolecules with different concentrations and sizes (molecular weight and spatial structure) were used as a class of capping ligands to control the longitudinal surface plasmon resonance (LSPR) property of gold nanorods (GNRs). The LSPR peaks were red-shifted by increasing the capping agent concentration. The size effect could be divided to two aspects: (1) When the ligands are small molecules, the LSPR peak is blue-shifted as the size of the capping ligand increases. (2) When the ligands are macromolecular proteins, the LSPR property is similar to that of the overgrown nanoparticle (Au@gap@GNR) without thiolated biomolecules as capping agents. Interestingly, thiol-free and nonhomooligomeric DNA strands as capping agents present a similar influence in shaping the overgrowth of GNRs by varying their concentrations and sizes. In addition, the size effect of a DNA nanostructure was used to construct a Delta lambda(LSPR)-based catalytic nucleic acid biosensor using a DNA dendritic nanostructure as a capping agent combined with LSPR signals generated from the Au@gap@GNRs with morphological evolution. More importantly, the Delta lambda(LSPR)-based biosensor possesses three advantages in nucleic acid biosensing: (1) It is completely label- and wash-free, (2) it has an ultrahigh sensitivity and signal-to-noise ratio, and (3) it can be visualized without any instrumental aid, indicating a significant potential for ultrasensitive biosensing.
机译:通过生物分子介导的过度生长系统地调整贵金属纳米颗粒的结构和性质对于它们在生物传感和成像中的应用具有重要意义。这里,具有不同浓度和尺寸(分子量和空间结构)的硫醇生物分子用作一类封端配体,以控制金纳米棒(GNR)的纵向表面等离子体共振(LSPR)特性。通过增加封端剂浓度,LSPR峰被红移。尺寸效应可以分为两个方面:(1)当配体是小分子时,LSPR峰是蓝移,因为封端配体的尺寸增加。 (2)当配体是大分子蛋白时,LSPR性质类似于没有硫化生物分子的过度纳米颗粒(Au @ GnR)的植物性(Au @ Gab @ GnR)作为封端剂。有趣的是,作为封端剂的无硫醇和非嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜伞菌DNA链在改变它们的浓度和尺寸来形成类似的影响。此外,使用DNA纳米结构的尺寸效应来构建使用DNA树突纳米结构作为覆盖剂与来自Au @ Gnrs产生的LSPR信号与形态学的LSPR信号组合。更重要的是,基于Delta Lambda(LSPR)的生物传感器在核酸生物传感中具有三种优点:(1)它是完全标记的 - 无洗涤,(2)它具有超高敏感性和信噪比,以及(3)可以在没有任何乐器辅助工具的情况下可视化,表明超敏感生物腐蚀的显着潜力。

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  • 来源
    《Analytical chemistry》 |2020年第10期|共8页
  • 作者单位

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Life &

    Hlth Sci Shenyang 110169 Peoples R China;

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Sci Res Ctr Analyt Sci Dept Chem Shenyang 110819 Peoples R China;

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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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