Preliminary Study of CdTe Quantum Dots Applied in DNA Sensors

Yueqian Yang, Juan Chen, Lida Sun, S. Xu, Chenping Lv, Hainan Wang, J. Lou, H. Miao, Jimei Zhang
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Abstract

With the development of molecular biology and genetic technology, target DNA detection and transition of genetic information are becoming increasingly significant, and electrochemical biosensor gains many concerns in direct detection of target DNA due to the advantages, i.e. simple mechanism, reliable result, low-cost process, sensitive and selective method for genetic detection. a novel biosensing system was presented and investigated based on electrochemical and DNA techniques, and the nano-scale semiconductor CdTe quantum dots (QDs) was firstly introduced to sensing system to investigated its electrochemical effect and properties, the sensing probe with structure of gold electrode (AuE)-CdTe quantum dots (CdTe QDs)-gold nanoparticles (AuNPs)-single strand sensing probe (ssDNA) was fabricated with layer-by-layer self-assembly method. The electrochemical properties and sensing ability of the probes were characterized and determined via cyclic voltammetry (CV) method. Obvious differential redox peaks current were revealed when the fabricated AuE/CdTe QDs, AuE/CdTe QDs/AuNPs, and AuE/CdTe QDs/AuNPs/ssDNA was examine by CV method, respectively. The sensing probe showed high sensitivity and specificity when the complementary target DNA and the target DNA with one-base-mismatch were determined, respectively. The current results indicated that the fabricated DNA biosensor has great potentials in detecting special DNA sequences via DNA technology.
CdTe量子点用于DNA传感器的初步研究
随着分子生物学和遗传技术的发展,靶DNA的检测和遗传信息的传递日益重要,电化学生物传感器以其机制简单、结果可靠、过程成本低、灵敏度高、选择性强等优点,在靶DNA的直接检测中备受关注。提出并研究了一种基于电化学和DNA技术的新型生物传感系统,首次将纳米级半导体CdTe量子点(QDs)引入传感系统,研究了其电化学效应和性能,采用逐层自组装的方法制备了具有金电极(AuE)-CdTe量子点(CdTe QDs)-金纳米粒子(AuNPs)-单链传感探针(ssDNA)结构的传感探针。利用循环伏安法对探针的电化学性能和传感能力进行了表征和测定。用CV法检测所制备的AuE/CdTe量子点、AuE/CdTe量子点/AuNPs和AuE/CdTe量子点/AuNPs/ssDNA的氧化还原峰电流存在明显差异。该传感探针在检测互补靶DNA和单碱基错配靶DNA时均表现出较高的灵敏度和特异性。目前的研究结果表明,所制备的DNA生物传感器在利用DNA技术检测特殊DNA序列方面具有很大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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