Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering, Changzhou University, Changzhou 21364, China.
Analyst. 2021 Mar 21;146(6):2029-2036. doi: 10.1039/d0an02186e. Epub 2021 Feb 2.
In this study, a sensitive and effective monitoring method for ractopamine (RAC) was developed based on a sensitive electrochemiluminescence (ECL) aptasensor. Here, we employed a perylene derivative (PTC-PEI) with a Cu-based metal-organic framework (HKUST-1), which could accelerate the electron-transfer (ET) rate and strengthen interactions by the amido bond, resulting in enhanced ECL sensitivity and stability. Astonishingly, compared with the response of PTC-PEI and complex, the ECL signal of the MOF-based ECL material was noticeably raised by 6 times higher than that of PTC-PEI. HKUST-1 exhibited an excellent catalytic effect towards the electrochemical reduction process of SO, thus allowing more sulfate radical anions (SO˙) to be generated. The strong ECL intensity of HKUST-1/PTC-PEI not only stemmed from the fixation of PTC-PEI that utilized its excellent film-forming abilities but also originated from the high porosity of HKUST-1 that carried more luminophores able to be excited. Satisfyingly, in the presence of the target molecule RAC, we observed an obvious quenching effect of signal, which could be attributed to aptamer recognition resulting in RAC being specifically captured on the electrode. Under optimal conditions, the developed sensor for the RAC assay displayed a desired linear range of 1.0 × 10-1.0 × 10 M and a low detection limit of 6.17 × 10 M (S/N = 3). This ECL sensor showed high sensitivity, good stability and excellent selectivity. More importantly, the proposed aptasensor exhibited excellent determination towards RAC detection and potential practical utility for real samples.
在这项研究中,基于灵敏的电化学发光(ECL)适体传感器,开发了一种用于莱克多巴胺(RAC)的灵敏且有效的监测方法。在这里,我们采用了一种具有基于铜的金属有机骨架(HKUST-1)的苝衍生物(PTC-PEI),它可以加速电子转移(ET)速率并通过酰胺键增强相互作用,从而提高了 ECL 的灵敏度和稳定性。令人惊讶的是,与 PTC-PEI 和复合物的响应相比,基于 MOF 的 ECL 材料的 ECL 信号明显提高了 6 倍,高于 PTC-PEI。HKUST-1 对 SO 的电化学还原过程表现出出色的催化作用,从而产生更多的硫酸根自由基阴离子(SO˙)。HKUST-1/PTC-PEI 的强 ECL 强度不仅源于利用其出色成膜能力固定 PTC-PEI,还源于 HKUST-1 的高多孔性,它携带更多能够被激发的发光体。令人满意的是,在存在目标分子 RAC 的情况下,我们观察到信号的明显猝灭效应,这可以归因于适体识别导致 RAC 特异性地被捕获在电极上。在最佳条件下,用于 RAC 测定的开发传感器显示出令人满意的线性范围为 1.0×10-1.0×10 M 和低检测限为 6.17×10 M(S/N = 3)。该 ECL 传感器具有高灵敏度、良好的稳定性和优异的选择性。更重要的是,所提出的适体传感器在 RAC 检测方面表现出优异的测定能力,具有潜在的实际应用价值。