Applied Biotechnology Branch, Human Effectiveness Directorate, Air Force Research Laboratory, Wright-Patterson Air Force Base, OH 45433, USA.
Biosens Bioelectron. 2010 Sep 15;26(1):23-8. doi: 10.1016/j.bios.2010.04.049. Epub 2010 May 7.
A detection system for theophylline that combined the recognition properties of an aptamer and the plasmonic response of gold nanoparticles (AuNPs) is presented. The aptamer was used as a linker for AuNPs functionalized with complementary sequences to the aptamer (DNA-AuNPs), producing supramolecular complexes that disassemble when exposed to theophylline due to aptamer binding. The detection event was reported as a change in the AuNPs plasmonic peak and intensity. Addition of a spacer on the DNA immobilized on the AuNPs facing the aptamer binding site improved the aggregates' response, doubling the detection range of system response to theophylline. Modification of the oligonucleotides immobilized on the AuNPs that reduced the interparticle distance in the aggregated state suppressed their response to theophylline and addition of the spacer recovered it. This work demonstrated that the design of oligonucleotides immobilized on the AuNPs could be used to improve their plasmonic response without affecting aptamer performance.
本文提出了一种茶碱检测系统,该系统结合了适体的识别特性和金纳米粒子(AuNPs)的等离子体响应。适体被用作与适体互补序列功能化的 AuNPs(DNA-AuNPs)的连接物,产生超分子复合物,当暴露于茶碱时由于适体结合而解组装。检测事件被报告为 AuNPs 等离子体峰和强度的变化。在 AuNPs 上固定的 DNA 上添加间隔物,该 DNA 位于适体结合位点对面,改善了聚集体的响应,将系统对茶碱的检测范围扩大了一倍。修饰固定在 AuNPs 上的寡核苷酸,减小聚集状态下的粒子间距离,抑制其对茶碱的响应,添加间隔物后恢复其响应。这项工作表明,可以通过设计固定在 AuNPs 上的寡核苷酸来改善其等离子体响应,而不会影响适体的性能。