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基于新型氮掺杂碳纳米管/Ag@Cu MOF 作为信号增强剂和报告纳米杂化物的超灵敏和选择性分子印迹电化学奥沙利铂传感器。

Ultrasensitive and selective molecularly imprinted electrochemical oxaliplatin sensor based on a novel nitrogen-doped carbon nanotubes/Ag@cu MOF as a signal enhancer and reporter nanohybrid.

机构信息

Department of Pharmaceutical Chemistry, College of Pharmacy, Najran University, Najran, Kingdom of Saudi Arabia.

Department of Pharmaceutical Analytical Chemistry, Faculty of Pharmacy, Assiut University, Assiut, Egypt.

出版信息

Mikrochim Acta. 2021 Mar 12;188(4):124. doi: 10.1007/s00604-021-04781-6.

Abstract

A sensitive and selective molecular imprinted polymeric network (MIP) electrochemical sensor is proposed for the determination of anti-cancer drug oxaliplatin (OXAL). The polymeric network [poly(pyrrole)] was electrodeposited on a glassy carbon electrode (GCE) modified with silver nanoparticles (Ag) functionalized Cu-metal organic framework (Cu-BDC) and nitrogen-doped carbon nanotubes (N-CNTs). The MIP-Ag@Cu-BDC /N-CNTs/GCE showed an observable reduction peak at -0.14 V, which corresponds to the Cu-BDC reduction. This peak increased and decreased by eluting and rebinding of OXAL, respectively. The binding constant between OXAL and Cu-BDC was calculated to be 3.5 ± 0.1 × 10 mol L. The electrochemical signal (∆i) increased with increasing OXAL concentration in the range 0.056-200 ng mL with a limit of detection (LOD, S/N = 3) of 0.016 ng mL. The combination of N-CNTs and Ag@Cu-BDC improves both the conductivity and the anchoring sites for binding the polymer film on the surface of the electrode. The MIP-based electrochemical sensor offered outstanding sensitivity, selectivity, reproducibility, and stability. The MIP-Ag@Cu-BDC /N-CNTs/GCE was applied to determine OXAL in pharmaceutical injections, human plasma, and urine samples with good recoveries (97.5-105%) and acceptable relative standard deviations (RSDs = 1.8-3.2%). Factors affecting fabrication of MIP and OXAL determination were optimized using standard orthogonal design using L (5) matrix. This MIP based electrochemical sensor opens a new venue for the fabrication of other similar  sensors and biosensors.

摘要

一种灵敏且选择性的分子印迹聚合物网络(MIP)电化学传感器被提出用于测定抗癌药物奥沙利铂(OXAL)。聚合网络[聚(吡咯)]在修饰有银纳米粒子(Ag)功能化的铜金属有机骨架(Cu-BDC)和氮掺杂碳纳米管(N-CNTs)的玻碳电极(GCE)上电沉积。MIP-Ag@Cu-BDC/N-CNTs/GCE 在 -0.14 V 处表现出可观察到的还原峰,这对应于 Cu-BDC 的还原。该峰通过 OXAL 的洗脱和再结合分别增加和减少。OXAL 与 Cu-BDC 之间的结合常数计算为 3.5±0.1×10 mol L。电化学信号(∆i)随着 OXAL 浓度在 0.056-200 ng mL 范围内的增加而增加,检测限(LOD,S/N=3)为 0.016 ng mL。N-CNTs 和 Ag@Cu-BDC 的结合提高了电极表面上聚合物膜的导电性和结合点。基于 MIP 的电化学传感器提供了出色的灵敏度、选择性、重现性和稳定性。MIP-Ag@Cu-BDC/N-CNTs/GCE 用于测定药物注射液、人血浆和尿液样品中的 OXAL,回收率良好(97.5-105%),相对标准偏差(RSDs=1.8-3.2%)可接受。使用 L(5)矩阵的标准正交设计优化了影响 MIP 制备和 OXAL 测定的因素。这种基于 MIP 的电化学传感器为其他类似传感器和生物传感器的制造开辟了新途径。

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