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基于高电化学活性的 Au-NP/2D 锌金属有机骨架杂化结构的 ECL 传感器用于三阴性乳腺癌中 miRNA-522 的检测。

High electrochemical active Au-NP/2D zinc-metal organic frameworks heterostructure-based ECL sensor for the miRNA-522 detection in triple negative breast cancer.

机构信息

Department of Laboratory Medicine Center, China-Japan Union Hospital of Jilin University, Changchun, 130033, China.

Department of Analytical Chemistry, College of Chemistry, Jilin University, Changchun, 130012, China.

出版信息

Talanta. 2023 Dec 1;265:124875. doi: 10.1016/j.talanta.2023.124875. Epub 2023 Jun 28.

Abstract

In this work, a novel electrochemiluminescence (ECL) sensor has been developed to detect the miRNA-522 in the tumor tissues of triple-negative breast cancer (TNBC) patients. Au NPs/Zn MOF heterostructure was obtained by in situ growth and used as novel luminescence probe. Firstly, zinc-metal organic framework nanosheets (Zn MOF NSs) were synthesized with Zn as the central metal ion and 2-aminoterephthalic acid (NH-BDC) as the ligand. 2D MOF nanosheets with ultra-thin layered structure and relatively large specific surface areas can enhance the catalytic activity in the ECL generation. Furthermore, the electron transfer capacity and the electrochemical active surface area of MOF were greatly improved by the growth of Au NPs. Therefore, Au NPs/Zn MOF heterostructure showed the significant electrochemical activity in the sensing process. In addition, the magnetic FeO@SiO@Au microspheres were used as capture units in the magnetic separation step. The magnetic spheres with hairpin aptamer H1 can capture target gene. Then the captured miRNA-522 triggered the target catalyzed hairpin assembly (CHA) sensing process and linked Au NPs/Zn MOF heterostructure. The concentration of miRNA-522 can be quantified by the ECL signal enhancement of the Au NPs/Zn MOF heterostructure. Due to the high catalytic activity of Au NPs/Zn MOF heterostructure and their unique structural and electrochemical properties, the prepared ECL sensor achieved high-sensitive detection of miRNA-522 in the range of 1 fM to 0.1 nM with the detection limit of 0.3 fM. This strategy can provide a potential alternative for miRNA detection in medical research and clinical diagnosis of triple negative breast cancer.

摘要

在这项工作中,我们开发了一种新型的电化学发光(ECL)传感器,用于检测三阴性乳腺癌(TNBC)患者肿瘤组织中的 miRNA-522。通过原位生长获得了 Au NPs/Zn MOF 异质结构,并将其用作新型发光探针。首先,我们合成了锌金属有机骨架纳米片(Zn MOF NSs),其中 Zn 为中心金属离子,2-氨基对苯二甲酸(NH-BDC)为配体。具有超薄层状结构和相对较大比表面积的二维 MOF 纳米片可以增强 ECL 产生中的催化活性。此外,Au NPs 的生长大大提高了 MOF 的电子转移能力和电化学活性表面积。因此,Au NPs/Zn MOF 异质结构在传感过程中表现出显著的电化学活性。此外,我们使用磁性 FeO@SiO@Au 微球作为磁性分离步骤中的捕获单元。带有发夹适体 H1 的磁性球可以捕获靶基因。然后,捕获的 miRNA-522 触发了靶催化发夹组装(CHA)传感过程,并与 Au NPs/Zn MOF 异质结构相连。通过 Au NPs/Zn MOF 异质结构的 ECL 信号增强,可以定量检测 miRNA-522 的浓度。由于 Au NPs/Zn MOF 异质结构具有高催化活性及其独特的结构和电化学性质,所制备的 ECL 传感器在 1 fM 至 0.1 nM 的范围内实现了对 miRNA-522 的高灵敏检测,检测限为 0.3 fM。该策略可为医学研究和三阴性乳腺癌的临床诊断中的 miRNA 检测提供一种潜在的替代方法。

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