Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, PR China.
Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, PR China.
Biosens Bioelectron. 2018 Jul 1;110:239-245. doi: 10.1016/j.bios.2018.03.069. Epub 2018 Mar 30.
Herein, we successfully devised a novel photoelectrochemical (PEC) platform for ultrasensitive detection of adenosine by target-triggering cascade multiple cycle amplification based on the silver nanoparticles-assisted ion-exchange reaction with CdTe quantum dots (QDs). In the presence of target adenosine, DNA s1 is released from the aptamer and then hybridizes with hairpin DNA (HP1), which could initiate the cycling cleavage process under the reaction of nicking endonuclease. Then the product (DNA b) of cycle I could act as the "DNA trigger" of cycle II to further generate a large number of DNA s1, which again go back to cycle I, thus a cascade multiple DNA cycle amplification was carried out to produce abundant DNA c. These DNA c fragments with the cytosine (C)-rich loop were captured by magnetic beads, and numerous silver nanoclusters (Ag NCs) were synthesized by AgNO and sodium borohydride. The dissolved AgNCs released numerous silver ions which could induce ion exchange reaction with the CdTe QDs, thus resulting in greatly amplified change of photocurrent for target detection. The detection linear range for adenosine was 1.0 fM ~10 nM with the detection limit of 0.5 fM. The present PEC strategy combining cascade multiple DNA cycle amplification and AgNCs-induced ion-exchange reaction with QDs provides new insight into rapid, and ultrasensitive PEC detection of different biomolecules, which showed great potential for detecting trace amounts in bioanalysis and clinical biomedicine.
在此,我们成功设计了一种基于银纳米粒子辅助的 CdTe 量子点(QD)离子交换反应的光电化学(PEC)平台,通过目标触发级联多循环扩增,实现了对腺苷的超灵敏检测。在靶标腺苷存在的情况下,适配体从 DNA s1 上释放出来,然后与发夹 DNA(HP1)杂交,在核酸内切酶的反应下,启动循环切割过程。然后,循环 I 的产物(DNA b)可以作为循环 II 的“DNA 触发”,进一步产生大量的 DNA s1,它们又回到循环 I,从而进行级联多 DNA 循环扩增,产生大量的 DNA c。这些富含胞嘧啶(C)的环的 DNA c 片段被磁性珠捕获,AgNO 和硼氢化钠合成了大量的银纳米簇(Ag NCs)。溶解的 AgNCs 释放出大量的银离子,与 CdTe QDs 发生离子交换反应,从而导致光电流的极大放大,实现对目标物的检测。腺苷的检测线性范围为 1.0 fM~10 nM,检测限为 0.5 fM。本研究将级联多 DNA 循环扩增与 AgNCs 诱导的 QDs 离子交换反应相结合的 PEC 策略为快速、超灵敏的 PEC 检测不同生物分子提供了新的思路,在生物分析和临床生物医学中痕量检测方面具有广阔的应用前景。