College of Chemistry, Liaoning University, Shenyang 110036, PR China; College of Pharmacy, Jinzhou Medical University, 121001, PR China.
College of Pharmacy, Jinzhou Medical University, 121001, PR China.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Dec 5;282:121663. doi: 10.1016/j.saa.2022.121663. Epub 2022 Jul 29.
In this work, a novel Eu-DTPA-bis(AMC) complex with red luminescence was designed and synthesized for sequential detection of Cu and biothiols (Cys/Hcy/GSH) based on the displacement strategy with the good selectivity, high sensitivity, and large Stokes shift (288 nm). The possible detection mechanism was verified by UV-vis, the high-resolution mass spectrometry, and the fluorescence decay curve. The experimental parameters, including the solution pH, the incubation time, the concentration ratio of Eu-DTPA-bis(AMC) to Cu and biothiols concentration, were optimized. Under the optimal conditions, it shows a good linear relationship between the concentration (0-10 μM) of Cu and the fluorescence intensity of Eu-DTPA-bis(AMC), with a low detection limit of 0.065 μM. The linear range and the limit of detection of the Eu-DTPA-bis(AMC)/Cu system for Cys/Hcy/GSH were 2.5-22.5/5-45/5-50 μM and 0.11/0.07/0.05 μM, respectively. Surprisingly, the high or low concentration of Eu-DTPA-bis(AMC)/Cu can significantly affect the selectivity of the sensing system to biothiols (Cys/GSH/Hcy). When the concentration of the Eu-DTPA-bis(AMC)/Cu system is 10.0 μΜ, it could recognize biothiols (Cys/GSH/Hcy) from other substances, but when the concentration is as low as 3.3 μM, it could further specifically distinguished Cys from Hcy/GSH. Owing to the high anti-interference characteristics, accuracy and specificity, the sensing system was well applied to the cascade detection of Cu in actual environmental samples and Cys in biological and food samples, including FBS, urine, milk, beverage, fresh juice with the satisfactory recoveries from 96.20 to 106.80 %.
在这项工作中,设计并合成了一种具有红色发光的新型 Eu-DTPA-bis(AMC) 配合物,用于基于置换策略的 Cu 和生物硫醇(半胱氨酸/高半胱氨酸/谷胱甘肽)的顺序检测,该策略具有良好的选择性、高灵敏度和大斯托克斯位移(288nm)。通过紫外可见光谱、高分辨率质谱和荧光衰减曲线验证了可能的检测机制。优化了实验参数,包括溶液 pH 值、孵育时间、Eu-DTPA-bis(AMC)与 Cu 和生物硫醇浓度的浓度比。在最佳条件下,Eu-DTPA-bis(AMC)与 Cu 的浓度(0-10 μM)与 Eu-DTPA-bis(AMC)的荧光强度之间呈良好的线性关系,检测限低至 0.065 μM。Eu-DTPA-bis(AMC)/Cu 体系对半胱氨酸/高半胱氨酸/谷胱甘肽的线性范围和检测限分别为 2.5-22.5/5-45/5-50 μM 和 0.11/0.07/0.05 μM。令人惊讶的是,Eu-DTPA-bis(AMC)/Cu 的高或低浓度可以显著影响传感系统对半硫醇(半胱氨酸/谷胱甘肽/高半胱氨酸)的选择性。当 Eu-DTPA-bis(AMC)/Cu 体系的浓度为 10.0 μM 时,它可以识别来自其他物质的生物硫醇(半胱氨酸/谷胱甘肽/高半胱氨酸),但当浓度低至 3.3 μM 时,它可以进一步特异性地区分半胱氨酸与高半胱氨酸/谷胱甘肽。由于具有高抗干扰特性、准确性和特异性,该传感系统很好地应用于实际环境样品中的 Cu 和生物和食品样品中的半胱氨酸的级联检测,包括 FBS、尿液、牛奶、饮料、新鲜果汁,回收率从 96.20%到 106.80%。