Department of Andrology & Sexual Medicine, the First Affiliated Hospital of Fujian Medical University.
Department of Pharmaceutical Analysis, School of Pharmacy, Fujian Medical University.
Chem Pharm Bull (Tokyo). 2023 Nov 1;71(11):812-818. doi: 10.1248/cpb.c23-00410. Epub 2023 Sep 14.
Tyrosinase (TYR) plays a pivotal role in the biosynthesis of melanin, and its activity level holds critical implications for vitiligo, melanoma cancer, and food nutritional value. The sensitive determination of TYR activity is of great significance for both fundamental research and clinical investigations. In this work, we successfully synthesized silicon-doped carbon quantum dots (Si-CQDs) through a one-pot hydrothermal method with trans-aconitic acid as carbon source and N-[3-(trimethoxysilyl)propyl]ethylenediamine as the dopant, exhibiting remarkable fluorescence quantum yield (QY) and photostability. Correspondingly, Si-CQDs were used as a probe to construct a sensitive, rapid, and user-friendly fluorescence method for TYR detection. The method relied on the oxidation of isoprenaline (ISO) by TYR, where Si-CQDs were employed as a highly efficient probe. The testing mechanism was the internal filtering effect (IFE) observed between Si-CQDs and the oxidative system of ISO and TYR. Under the optimized conditions, the fluorescence strategy exhibited a detection range of 0.05-2.0 U/mL for TYR with a limit of detection (LOD) of 0.041 U/mL. Furthermore, we successfully demonstrated the accurate determination of TYR levels in human serum, showcasing the promising potential of this method in various practical scenarios.
酪氨酸酶(TYR)在黑色素的生物合成中起着关键作用,其活性水平对白癜风、黑色素瘤癌症和食物营养价值都具有重要意义。TYR 活性的灵敏测定对于基础研究和临床研究都具有重要意义。在这项工作中,我们成功地通过一锅水热法合成了硅掺杂碳量子点(Si-CQDs),以反丁烯二酸为碳源,N-[3-(三甲氧基硅基)丙基]乙二胺为掺杂剂,表现出显著的荧光量子产率(QY)和光稳定性。相应地,我们将 Si-CQDs 用作探针,构建了一种灵敏、快速且易于使用的荧光法来检测 TYR。该方法依赖于 TYR 对异丙肾上腺素(ISO)的氧化,其中 Si-CQDs 被用作高效探针。测试机制是 Si-CQDs 与 ISO 和 TYR 的氧化体系之间观察到的内部过滤效应(IFE)。在优化条件下,该荧光策略对 TYR 的检测范围为 0.05-2.0 U/mL,检测限(LOD)为 0.041 U/mL。此外,我们还成功地证明了该方法能够准确测定人血清中的 TYR 水平,展示了该方法在各种实际场景中的应用潜力。