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Label-free and Raman dyes-free surface-enhanced Raman spectroscopy for detection of DNA

机译:用于检测DNA的无标记和无拉曼染料的表面增强拉曼光谱

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摘要

In this work, a label-free and Raman dyes-free surface enhanced Raman spectroscopy for DNA detection based on the in situ DNA-metallization was developed and studied. A glass slide was employed to immobilize a peptide nucleic acid (PNA) as a recognition probe and to perform the detection procedure. Upon hybridization of the target DNA with the PNA probe, the DNA skeleton could adsorb positively charged silver ions due to the negatively charged DNA target. After chemical reduction by hydroquinone followed by a silver enhancement step, silver nanoparticles could be grown on the surface to reach 10 nm in size. The grown silver nanoparticles along the DNA skeleton induced sufficient interactions between the bases and the substrate to yield a sensitive Raman signal. The results suggested that the SERS spectrum of DNA was strongly dominated by the spectral feature of adenine at 736 cm~(-1), where adenine served as an endogenous marker for label-free SERS detection of DNA. Using this method, highly reproducible and good quality SERS signals of DNA were obtained with a linear range varied between 1.0 × 10~(-10) to 1.0 × 10~(-6) M and detection limit of 34 pM. Overall, this high-performance DNA-metallization based SERS method may offer a versatile platform for label-free SERS detection of DNA at low-cost with promising application in clinical diagnosis.
机译:在这项工作中,开发并研究了基于原位DNA金属化的无标记和无拉曼染料表面增强拉曼光谱用于DNA检测。使用载玻片固定肽核酸(PNA)作为识别探针并执行检测程序。在靶DNA与PNA探针杂交后,由于带负电荷的DNA靶,DNA骨架可以吸附带正电荷的银离子。在通过对苯二酚进行化学还原后再进行银增强步骤之后,可以在表面上生长银纳米粒子,以达到10 nm的尺寸。沿着DNA骨架生长的银纳米颗粒在碱基和底物之间引起足够的相互作用,从而产生敏感的拉曼信号。结果表明,腺嘌呤在736 cm〜(-1)处的光谱特征强烈地主导着DNA的SERS光谱,其中腺嘌呤是无标记SERS检测DNA的内源性标记。使用这种方法,可以得到线性范围在1.0×10〜(-10)至1.0×10〜(-6)M之间且检测限为34 pM的高可重复性和高质量的DNA SERS信号。总体而言,这种基于DNA金属化的高性能SERS方法可为低成本,无标签SERS DNA检测提供多功能平台,并有望在临床诊断中应用。

著录项

  • 来源
    《Sensors and Actuators》 |2018年第1期|483-489|共7页
  • 作者单位

    Jiangxi Province Key Laboratory of Polymer Micro/Nano Manufacturing and Devices, East China University ofTechnology, 330013, Nanchang, China ,Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangxi Province Key Laboratory of Polymer Micro/Nano Manufacturing and Devices, East China University ofTechnology, 330013, Nanchang, China ,Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

    Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, Department of Pharmaceutical Analysis School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou. China;

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

    Raman spectroscopy; Metallization; Label-free; Adenine;

    机译:拉曼光谱金属化;无标签;腺嘌呤;

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