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具有可控催化活性的新型 TiCT MXene 纳米酶及其在电化学生物传感器中的应用。

Novel TiCT MXene nanozyme with manageable catalytic activity and application to electrochemical biosensor.

机构信息

Department of Clinical Laboratory, University-Town Hospital of Chongqing Medical University, Chongqing, 401331, China.

School of Public Health and Management, Chongqing Medical University, Chongqing, 400016, China.

出版信息

J Nanobiotechnology. 2022 Mar 9;20(1):119. doi: 10.1186/s12951-022-01317-9.

Abstract

In this work, TiCT MXene was identified as efficient nanozyme with area-dependent electrocatalytic activity in oxidation of phenolic compounds, which originated from the strong adsorption effect between the phenolic hydroxyl group and the oxygen atom on the surface of TiCT MXene flake. On the basis of the novel electrocatalytic activity, TiCT MXene was combined with alkaline phosphatase to construct a novel cascading catalytic amplification strategy using 1-naphthyl phosphate (1-NPP) as substrate, thereby realizing efficient electrochemical signal amplification. Taking advantage of the novel cascading catalytic amplification strategy, an electrochemical biosensor was fabricated for BCR/ABL fusion gene detection, which achieved excellent sensitivity with linear range from 0.2 fM to 20 nM and limit of detection down to 0.05 fM. This biosensor provided a promising tool for ultrasensitive fusion gene detection in early diagnosis of chronic myelogenous leukemia and acute lymphocytic leukemia. Moreover, the manageable catalytic activity of MXene broke a path for developing nanozymes, which possessed enormous application potential in not only electrochemical analysis but also the extensive fields including organic synthesis, pollutant disposal and so on.

摘要

在这项工作中,TiCT MXene 被确定为具有面积依赖性电催化活性的高效纳米酶,用于氧化酚类化合物,这源于酚羟基与 TiCT MXene 薄片表面氧原子之间的强吸附作用。基于这种新型电催化活性,TiCT MXene 与碱性磷酸酶结合,构建了一种新型级联催化放大策略,以 1-萘基磷酸酯(1-NPP)为底物,从而实现了高效的电化学信号放大。利用新型级联催化放大策略,构建了用于 BCR/ABL 融合基因检测的电化学生物传感器,该传感器具有优异的灵敏度,线性范围为 0.2 fM 至 20 nM,检测限低至 0.05 fM。该生物传感器为慢性髓性白血病和急性淋巴细胞白血病的早期诊断提供了一种用于超灵敏融合基因检测的有前途的工具。此外,MXene 可控制的催化活性为开发纳米酶开辟了道路,纳米酶在电化学分析以及包括有机合成、污染物处理等广泛领域具有巨大的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8ef/8905786/7e51b40071c1/12951_2022_1317_Fig2_HTML.jpg

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