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使用新型电化学DNA生物传感器检测抗乳腺癌药物阿贝西利。

Detection of abemaciclib, an anti-breast cancer agent, using a new electrochemical DNA biosensor.

作者信息

Lei Zimeng, Alwan Merim, Alamir Hassan Thoulfikar A, Alkaaby Hussein Humedy Chlib, Farhan Sinan Subhi, Awadh Sura A, Altimari Usama S, Al-Baghdady Hawra'a Fadhel Abbas, Kadhim Athmar Ali, Qasim Maytham T, Adhab Ali Hussein, Nekuei Abuzar

机构信息

School of International Education, Beijing University of Chemical Technology, Beijing, China.

Medical Lab. Techniques Department, College of Medical Technology, Al-Farahidi University, Baghdad, Iraq.

出版信息

Front Chem. 2022 Oct 21;10:980162. doi: 10.3389/fchem.2022.980162. eCollection 2022.

Abstract

Detection of DNA molecules and possible chemotherapy-induced changes in its structure has been the goal of researchers using rapid, sensitive and inexpensive approaches. Therefore, the aim of this study was to fabricate a new electrochemical DNA biosensor using pencil graphite electrodes modified with polypyrrole/Ce doped hexagonal nickel oxide nanodisks or PP/Ce-doped H-NiO-ND composites for determination of Abemaciclib (AMC) and ds-DNA molecules. The DNA biosensor was prepared by immobilizing ds-DNA on the surface of PP/Ce-doped H-NiO-ND/PGE. Differential pulse voltammetry (DPV) was used to electrochemically detect AMC. The results elucidate the extremely high sensitivity of the ds-DNA/PP/Ce-doped H-NiO-ND/PGE biosensor to AMC, with a narrow detection limit of 2.7 nM and a lengthy linear range of 0.01-600.0 μM. The admirable performance of as-fabricated biosensor could be related to the active reaction sites and the unique electrochemical response related to the nanocomposites by enhancing ds-DNA stabilization and accelerating electron transfer on the surface of electrode.

摘要

利用快速、灵敏且廉价的方法检测DNA分子及其可能因化疗引起的结构变化一直是研究人员的目标。因此,本研究的目的是制备一种新型电化学DNA生物传感器,该传感器采用聚吡咯/铈掺杂六方氧化镍纳米盘或PP/Ce掺杂H-NiO-ND复合材料修饰的铅笔石墨电极,用于测定阿贝西利(AMC)和双链DNA分子。通过将双链DNA固定在PP/Ce掺杂H-NiO-ND/PGE表面制备DNA生物传感器。采用差分脉冲伏安法(DPV)对AMC进行电化学检测。结果表明,ds-DNA/PP/Ce掺杂H-NiO-ND/PGE生物传感器对AMC具有极高的灵敏度,检测限低至2.7 nM,线性范围宽达0.01-600.0 μM。所制备生物传感器的优异性能可能与活性反应位点以及通过增强ds-DNA稳定性和加速电极表面电子转移而与纳米复合材料相关的独特电化学响应有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d3b/9635563/d5cd50f5d25f/fchem-10-980162-g001.jpg

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