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纳米通道限制的石墨烯量子点/铂纳米粒子增强腔内-O系统的电化学发光用于灵敏免疫分析。

Nanochannel confined graphene quantum dots/platinum nanoparticles boosts electrochemiluminescence of luminal-O system for sensitive immunoassay.

作者信息

Zhou Yucheng, Zhang Chaoyan, Liu Jiyang, Mou Yiping

机构信息

General Surgery, Cancer Center, Department of Gastrointestinal and Pancreatic Surgery, Zhejiang Provincial People's Hospital, Hangzhou Medical College, Hangzhou 310014, China.

School of Chemistry and Chemical Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.

出版信息

Talanta. 2025 Apr 1;285:127223. doi: 10.1016/j.talanta.2024.127223. Epub 2024 Nov 20.

Abstract

Sensitive detection of tumor biomarkers is of great significance for early cancer diagnosis, treatment evaluation, and recurrence monitoring. Development of convenient electrochemiluminescence (ECL) immunosensor using dissolved oxygen (O) as an endogenous co-reactant of luminol combined with efficient nanocatalysts to boost ECL signal in neutral media is highly desirable. Herein, sensitive detection of tumor biomarker using ECL of luminal-O enhanced by confinement of nitrogen-doped graphene quantum dots (N-GQDs) and platinum nanoparticles (PtNPs) on nanochannel array was demonstrated. A high-density nanochannel array-modified electrode was achieved by rapidly growing an amino-functionalized. Vertically-ordered mesoporous silica film (NH-VMSF) on the inexpensive and readily available indium tin oxide (ITO) electrode. Through simple electrodeposition, N-GQDs were confined and PtNPs were in-situ synthesized in nanochannels of NH-VMSF. These confined nanocomposites catalyzed the electroreduction of O at negative potentials to generate a large amount of reactive oxygen species (ROS) and facilitated luminol oxidation, enhancing the ECL signal of luminol by 25 times. Two immunosensors were fabricated after covalent immobilization of the recognition antibody of carbohydrate antigen 199 (CA199) or carbohydrate antigen 125 (CA125) on the outer surface of the NH-VMSF and blocking of non-specific sites. When tumor biomarkers bind to the corresponding antibodies on the recognition interface, the formed immunocomplex hindered the diffusion of luminol to the underlying electrode, resulting in a decrease in the ECL signal and sensitive detection of tumor biomarker. The constructed CA199 immunosensor exhibited a linear detection range for CA199 from 0.5 mU mL to 50 U mL, with a detection limit (DL) of 0.03 mU mL. For CA125 detection, linear detection ranged from 0.5 mU mL to 500 U mL, with a DL of 0.005 mU mL. The fabricated immunosensors demonstrated good selectivity and high reproducibility. This study provides great potential for the development of efficient luminol ECL systems in neutral media and expands the biological application in sensitive detection of tumor biomarker.

摘要

肿瘤生物标志物的灵敏检测对于癌症早期诊断、治疗评估及复发监测具有重要意义。开发一种便捷的电化学发光(ECL)免疫传感器,利用溶解氧(O)作为鲁米诺的内源性共反应剂,并结合高效纳米催化剂以增强中性介质中的ECL信号,是非常有必要的。在此,展示了通过将氮掺杂石墨烯量子点(N-GQDs)和铂纳米颗粒(PtNPs)限制在纳米通道阵列上,利用鲁米诺-O的ECL灵敏检测肿瘤生物标志物。通过在廉价且易于获得的氧化铟锡(ITO)电极上快速生长氨基功能化的垂直有序介孔二氧化硅膜(NH-VMSF),实现了高密度纳米通道阵列修饰电极。通过简单的电沉积,N-GQDs被限制在NH-VMSF的纳米通道中,并且PtNPs原位合成。这些受限的纳米复合材料在负电位下催化O的电还原以产生大量活性氧物种(ROS),并促进鲁米诺氧化,将鲁米诺的ECL信号增强了25倍。在将糖类抗原199(CA199)或糖类抗原125(CA125)的识别抗体共价固定在NH-VMSF的外表面并封闭非特异性位点后,制备了两种免疫传感器。当肿瘤生物标志物与识别界面上的相应抗体结合时,形成的免疫复合物阻碍了鲁米诺向底层电极的扩散,导致ECL信号降低,从而实现肿瘤生物标志物的灵敏检测。构建的CA199免疫传感器对CA199的线性检测范围为0.5 mU mL至50 U mL,检测限(DL)为0.03 mU mL。对于CA125检测,线性检测范围为0.5 mU mL至500 U mL,DL为0.005 mU mL。制备的免疫传感器表现出良好的选择性和高重现性。该研究为中性介质中高效鲁米诺ECL系统的开发提供了巨大潜力,并扩展了在肿瘤生物标志物灵敏检测中的生物应用。

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