Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, PR China.
Department of Chemical Engineering and Safety, Binzhou University, Binzhou, 256600, China.
Biosens Bioelectron. 2022 Oct 15;214:114516. doi: 10.1016/j.bios.2022.114516. Epub 2022 Jul 3.
The construction of advanced systems that can accurately detect neuron-specific enolase (NSE) is critical to the rapid diagnosis of small cell lung cancer (SCLC). Herein, a luminol-based electrochemiluminescence (ECL) biosensor enhanced by reactive oxygen species (ROS) is proposed to perform the ultrasensitive detection of NSE. D-FeO@Pt, synthesized as a signal indicator, was combined with luminol to significantly shorten its electron transfer pathway. Its peroxidase activity catalyzed the decomposition of HO to generate a large amount of •OH, thus considerably increasing the ECL signal of the luminol-HO system. CePO/CeO heterostructures with improved surface-active areas were then employed as sensing substrates. The platform enabled the accelerated generation of O through enriched Ce/Ce redox pairs, thereby amplifying the strength of the response of the foundation. Through integrated dual ROS amplification, the proposed sandwich ECL immunosensor configuration achieved sensitive detection in the detection range of 76 fg/mL - 100 ng/mL, with a detection limit of 72.4 fg/mL. Furthermore, the sensor exhibited high selectivity for the determination of NSE in human serum. Overall, this study serves as an important reference for integrating ROS and enzymatic strategies in ECL research to achieve accurate, sensitive, and highly selective detection of a target.
构建能够准确检测神经元特异性烯醇化酶 (NSE) 的先进系统对小细胞肺癌 (SCLC) 的快速诊断至关重要。在此,提出了一种基于鲁米诺的电化学发光 (ECL) 生物传感器,通过活性氧 (ROS) 进行增强,以实现对 NSE 的超灵敏检测。合成的 D-FeO@Pt 作为信号指示剂与鲁米诺结合,显著缩短了其电子转移途径。其过氧化物酶活性催化 HO 的分解,生成大量的 •OH,从而大大增强了鲁米诺-HO 体系的 ECL 信号。然后,使用具有改进的表面活性面积的 CePO/CeO 异质结构作为传感基底。该平台通过富含 Ce/Ce 氧化还原对加速 O 的生成,从而放大了基础的响应强度。通过集成的双重 ROS 放大,所提出的三明治 ECL 免疫传感器结构在 76 fg/mL - 100 ng/mL 的检测范围内实现了灵敏检测,检测限为 72.4 fg/mL。此外,该传感器对人血清中 NSE 的测定表现出高选择性。总体而言,这项研究为在 ECL 研究中整合 ROS 和酶策略以实现对目标的准确、灵敏和高选择性检测提供了重要参考。