Center for Health Assessment, Zhejiang Provincial Key Laboratory of Watershed Science and Health, College of Public Health and Management, Wenzhou Medical University, Zhejiang, 325035, Wenzhou, China.
Hubei Collaborative Innovation Center for Advanced Organic Chemical Materials & Key Laboratory for the Synthesis and Application of Organic Functional Molecules, Ministry of Education & College of Chemistry & Chemical Engineering, Hubei University, Wuhan, 430062, Hubei, China.
Anal Bioanal Chem. 2021 Mar;413(8):2135-2146. doi: 10.1007/s00216-021-03181-2. Epub 2021 Jan 28.
Herein, we synthesized and characterized glutathione-capped copper nanoclusters (CuNCs) using a convenient one-pot chemical reduction approach based on glutathione as capping and reducing agents. The Ce(III) induced aggregation-induced emission of CuNCs to form a CuNCs-Ce fluoroprobe due to electrostatic and coordination interactions between Ce and CuNCs. In contrast to CuNCs, the fluorescent intensities (FLs) of CuNCs-Ce were enhanced by ~ 40-fold concomitant with 20-nm blue-shift of the maximum emission, and a 3.45-fold lengthening of the average fluorescent lifetime. The FLs of CuNCs-Ce were selectively quenched at 650 nm by hydrogen peroxide (HO) via the redox reaction. Based on this phenomenon, the sensitive assay of HO was realized, and the linear range spanned over the range of 14-140 μM. Notably, the visualization of the fluorescence quenched effect of HO could be easily attained. Additionally, glucose could be specifically oxidized by glucose oxidase to produce HO, and thus the detection of glucose was achieved according to changes in the concentrations of HO. Under optimized conditions, the fluorescent assay of glucose based on the CuNCs-Ce system offered the linear range of 8-48 μM with detection limit of 2.4 μM. Meanwhile, high selectivity of the as-constructed fluorescent assay allows the sensitive detection of HO and glucose in real-world care products and human serum samples, showing a great application potential in their conventional monitoring.
在此,我们使用一种简便的一锅化学还原法,以谷胱甘肽作为封端和还原试剂,合成并表征了谷胱甘肽封端的铜纳米簇(CuNCs)。Ce(III) 通过静电和配位相互作用诱导 CuNCs 的聚集诱导发射,形成 CuNCs-Ce 荧光探针。与 CuNCs 相比,由于 CuNCs 和 Ce 之间的静电和配位相互作用,CuNCs-Ce 的荧光强度(FL)增强了约 40 倍,最大发射峰蓝移了 20nm,平均荧光寿命延长了 3.45 倍。CuNCs-Ce 的荧光通过氧化还原反应被过氧化氢(HO)在 650nm 处选择性猝灭。基于这一现象,实现了对 HO 的灵敏检测,线性范围跨越 14-140μM。值得注意的是,很容易实现对 HO 荧光猝灭效应的可视化。此外,葡萄糖可以被葡萄糖氧化酶特异性氧化生成 HO,因此可以根据 HO 浓度的变化来检测葡萄糖。在优化条件下,基于 CuNCs-Ce 体系的荧光法检测葡萄糖的线性范围为 8-48μM,检测限为 2.4μM。同时,所构建的荧光分析方法具有高选择性,可用于实际护理产品和人血清样品中 HO 和葡萄糖的灵敏检测,在常规监测中具有很大的应用潜力。