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铜纳米颗粒荧光探针的制备及过氧化氢和葡萄糖的检测

Preparation of copper nanoparticles fluorescent probes and detection of hydrogen peroxide and glucose.

作者信息

Shi Lin, Gao Wuyang, Ma Tianfeng, Xu Xiaohua, Wang Huan, Lu Yongchang

机构信息

Phytochemistry Key Laboratory of Tibetan Plateau of Qinghai Province, China; Modern Tibetan Medicine Creation Engineering Technology Research Center of Qinghai Province, China; College of Pharmacy, Qinghai Minzu University, China.

Phytochemistry Key Laboratory of Tibetan Plateau of Qinghai Province, China; Modern Tibetan Medicine Creation Engineering Technology Research Center of Qinghai Province, China; College of Pharmacy, Qinghai Minzu University, China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2024 Apr 15;311:123980. doi: 10.1016/j.saa.2024.123980. Epub 2024 Feb 6.

Abstract

Fluorescent copper nanoparticles (CuNPs) was synthesized by one-step chemical reduction method using ascorbic acid (AA) and copper sulfate (CuSO⋅5HO) as raw materials, which had good water solubility and fluorescence properties. A green, simple and safe CuNPs@Fe fluorescence probe was developed for the detection of hydrogen peroxide and glucose using Fe as a bridge. The prepared CuNPs could obtain the maximum fluorescence emission wavelength at 440 nm when the excitation wavelength was 360 nm. The average particle size of CuNPs was 10 nm, which had good photobleach resistance, stability and salt tolerance. The fluorescence intensity was quenched due to electron transfer (ET) process when hydrogen peroxide was added to CuNPs@Fe system. This result was mainly because Fenton reaction occured between hydrogen peroxide and Fe, producing hydroxyl free radicals (OH) and Fe. Since glucose could be catalyzed by specific glucose oxidase (GOX) to produce HO and corresponding oxidation products, the quantitative analysis of glucose was realized when glucose oxidase was introduced into the CuNPs@Fe sensor system. Therefore, a novel CuNPs@Fe fluorescent probe sensor study was constructed to further achieve quantitative detection of HO and glucose. Under the optimized experimental conditions, the linear ranges for HO and glucose were 28.219-171.562 μM and 1.237-75.771 μM, respectively. And the detection limits for HO and glucose were 7.169 μM and 0.540 μM, respectively. In addition, the mechanism of fluorescence probe quenching caused by the interaction between HO and CuNPs@Fe was also discussed. The proposed sensing system had been applied successfully to the detection of glucose in human serum samples.

摘要

以抗坏血酸(AA)和硫酸铜(CuSO₄·5H₂O)为原料,通过一步化学还原法合成了具有良好水溶性和荧光性能的荧光铜纳米颗粒(CuNPs)。以Fe为桥梁,开发了一种绿色、简单且安全的CuNPs@Fe荧光探针用于检测过氧化氢和葡萄糖。制备的CuNPs在激发波长为360 nm时,可在440 nm处获得最大荧光发射波长。CuNPs的平均粒径为10 nm,具有良好的抗光漂白性、稳定性和耐盐性。当向CuNPs@Fe体系中加入过氧化氢时,由于电子转移(ET)过程,荧光强度猝灭。这一结果主要是因为过氧化氢与Fe之间发生了芬顿反应,产生了羟基自由基(·OH)和Fe。由于葡萄糖可被特定的葡萄糖氧化酶(GOX)催化产生H₂O₂和相应的氧化产物,当将葡萄糖氧化酶引入CuNPs@Fe传感器体系时,实现了葡萄糖的定量分析。因此,构建了一种新型的CuNPs@Fe荧光探针传感器用于进一步实现对H₂O₂和葡萄糖的定量检测。在优化的实验条件下,H₂O₂和葡萄糖的线性范围分别为28.219 - 171.562 μM和1.237 - 75.771 μM。H₂O₂和葡萄糖的检测限分别为7.169 μM和0.540 μM。此外,还讨论了H₂O₂与CuNPs@Fe相互作用导致荧光探针猝灭的机理。所提出传感体系已成功应用于人体血清样品中葡萄糖的检测。

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