Zhang Cheng, Liang Mengna, Shao Congying, Li Ziwei, Cao Xue, Wang Yongxiang, Wu Yanan, Lu Shun
Key Laboratory of Green and Precise Synthetic Chemistry and Applications, Ministry of Education, School of Chemistry and Materials Science, Huaibei Normal University, Huaibei, Anhui 235000, China.
School of Engineering, Newcastle University, Newcastle Upon Tyne NE1 7RU, U.K.
ACS Appl Bio Mater. 2023 Mar 20;6(3):1283-1293. doi: 10.1021/acsabm.3c00031. Epub 2023 Feb 14.
Visual detection of mercury ions and glutathione is of great significance to public health and environmental issues. Herein, we developed a fluorescent sensor (l-Cys/CuNCs@ESM) based on the eggshell membrane (ESM) and red-emitting copper nanoclusters (CuNCs) by the in situ strategy via l-cysteine (l-Cys) as the reducing and protective agent for mercury ions and glutathione sensing visually. The as-prepared fluorescent product had good stability, portability, large Stokes shift (250 nm), and long fluorescence lifetime (7.3 μs). Notably, the l-Cys/CuNCs@ESM exhibited a specific fluorescence quenching response toward Hg. Moreover, the interaction between glutathione (GSH) and Hg could subsequently recover the fluorescence effectively. Inspired by this "on-off-on" switch, the l-Cys/CuNCs@ESM was applied as the dual-sensing system for visual detection of mercury ions and glutathione integrating with the portable smartphone. The limit of detection (LOD) of Hg is 1.1 μM for visualization and 0.52 μM for the fluorescence spectrometer. The corresponding LODs of GSH are 2.8 and 0.59 μM, respectively. This platform presents significant sensitivity, specificity, and stability, offering a promising potential for real-time/on-site sensing.
汞离子和谷胱甘肽的可视化检测对公共卫生和环境问题具有重要意义。在此,我们通过原位策略,以l-半胱氨酸(l-Cys)作为汞离子和谷胱甘肽可视化传感的还原剂和保护剂,基于蛋壳膜(ESM)和发红光的铜纳米簇(CuNCs)开发了一种荧光传感器(l-Cys/CuNCs@ESM)。所制备的荧光产物具有良好的稳定性、便携性、大斯托克斯位移(250 nm)和长荧光寿命(7.3 μs)。值得注意的是,l-Cys/CuNCs@ESM对Hg表现出特异性荧光猝灭响应。此外,谷胱甘肽(GSH)与Hg之间的相互作用随后可以有效地恢复荧光。受这种“开-关-开”开关的启发,l-Cys/CuNCs@ESM被用作与便携式智能手机集成的汞离子和谷胱甘肽可视化检测的双传感系统。Hg的可视化检测限(LOD)为1.1 μM,荧光光谱仪检测限为0.52 μM。GSH的相应LOD分别为2.8和0.59 μM。该平台具有显著的灵敏度、特异性和稳定性,为实时/现场传感提供了广阔的潜力。