College of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou, Zhejiang, 310058, China.
School of Information Engineering, Huzhou University, Huzhou, Zhejiang, 313000, China.
Biosens Bioelectron. 2021 Oct 15;190:113311. doi: 10.1016/j.bios.2021.113311. Epub 2021 May 7.
Herein, a novel ratiometric aptasensor based on carbon quantum dots@2-Methylimidazole zinc salt (CQDs@ZIF-8) and aptamer-functionalized gold nanoparticles (Apt-AuNPs) was developed for highly sensitive detection of ABA by fluorescence spectrometry. The CQDs@ZIF-8 nanomaterials displayed dual-emission properties at 490 nm and 657 nm with excitation at 420 nm were synthesized for the first time. ZIF-8 not only served as an anchor point for CQDs but also acted as a modulator to regulate fluorescence signals of CQDs. Interestingly, introduction of ZIF-8 changed the quenching properties of the AuNPs on CQDs. The AuNPs quenched the fluorescence of CQDs@ZIF-8 at 490 nm but not at the second peak of 657 nm. Few studies have been reported on the ineffectiveness of AuNPs in fluorescence quenching as far as we know. In this study, we found that incorporation of ABA triggered the aggregation of AuNPs due to the specific ABA-aptamer recognition and this changed the fluorescence intensity of the ratiometric probe (CQDs@ZIF-8@Apt-AuNPs). The proposed probe increased the sensitivity and selectivity of determining ABA levels in rice seeds in the range of 0.100-150 ng/mL with an LOD of 30.0 ng/L. Importantly, the method proposed here offers a new unique strategy for the construction of ratiometric probes and ultra-sensitive measurement of biomolecules.
本文首次合成了具有双发射特性的碳量子点@2-甲基咪唑锌盐(CQDs@ZIF-8)纳米材料,在 420nm 激发下,其发射峰位于 490nm 和 657nm。ZIF-8 不仅作为 CQDs 的锚定点,还作为调节剂来调节 CQDs 的荧光信号。有趣的是,ZIF-8 的引入改变了 AuNPs 对 CQDs 的猝灭特性。AuNPs 猝灭了 CQDs@ZIF-8 在 490nm 的荧光,但对第二个峰 657nm 没有猝灭作用。据我们所知,很少有研究报道 AuNPs 在荧光猝灭方面无效。在本研究中,我们发现由于特定的 ABA-适配体识别,ABA 的加入引发了 AuNPs 的聚集,从而改变了比率探针(CQDs@ZIF-8@Apt-AuNPs)的荧光强度。该探针在 0.100-150ng/mL 范围内对水稻种子中 ABA 水平的测定具有较高的灵敏度和选择性,LOD 为 30.0ng/L。重要的是,这里提出的方法为构建比率探针和超灵敏生物分子测量提供了一种新的独特策略。