Żołek Teresa, Maciejewska Dorota, Gilant Edyta, Gniazdowska Elzbieta, Kutner Andrzej, Noworyta Krzysztof R, Kutner Wlodzimierz
Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.
Department of Organic Chemistry, Faculty of Pharmacy, Medical University of Warsaw, Banacha 1, 02-097 Warsaw, Poland.
ACS Sens. 2022 Jul 22;7(7):1829-1836. doi: 10.1021/acssensors.2c00124. Epub 2022 May 12.
We devised, fabricated, and tested differential pulse voltammetry (DPV) and impedance spectroscopy (EIS) chemosensors for duloxetine (DUL) antidepressant determination in human plasma. Polyacrylic nanoparticles were synthesized by precipitation polymerization and were molecularly imprinted with DUL (DUL-nanoMIPs). Then, together with the single-walled carbon nanotube (SWCNT) scaffolds, they were uniformly embedded in polytyramine films, i.e., nanoMIPs-SWCNT@(polytyramine film) surface constructs, deposited on gold electrodes by potentiodynamic electropolymerization. These constructs constituted recognition units of the chemosensors. The molecular dynamics (MD) designing of DUL-nanoMIPs helped select the most appropriate functional and cross-linking monomers and determine the selectivity of the chemosensor. Three different DUL-nanoMIPs and non-imprinted polymer (nanoNIPs) were prepared with these monomers. DUL-nanoMIPs, synthesized from respective methacrylic acid and ethylene glycol dimethyl acrylate as the functional and cross-linking monomers, revealed the highest affinity to the DUL analyte. The linear dynamic concentration range, extending from 10 pM to 676 nM DUL, and the limit of detection (LOD), equaling 1.6 pM, in the plasma were determined by the DPV chemosensor, outperforming the EIS chemosensor. HPLC-UV measurements confirmed the results of DUL electrochemical chemosensing.
我们设计、制备并测试了用于测定人血浆中度洛西汀(DUL)抗抑郁药的差分脉冲伏安法(DPV)和阻抗谱(EIS)化学传感器。通过沉淀聚合法合成聚丙烯酸纳米颗粒,并用DUL对其进行分子印迹(DUL-纳米分子印迹聚合物)。然后,将它们与单壁碳纳米管(SWCNT)支架一起均匀地嵌入聚酪胺膜中,即纳米分子印迹聚合物-SWCNT@(聚酪胺膜)表面结构,通过电位动力学电聚合沉积在金电极上。这些结构构成了化学传感器的识别单元。DUL-纳米分子印迹聚合物的分子动力学(MD)设计有助于选择最合适的功能单体和交联单体,并确定化学传感器的选择性。用这些单体制备了三种不同的DUL-纳米分子印迹聚合物和非印迹聚合物(纳米非印迹聚合物)。由各自的甲基丙烯酸和乙二醇二甲基丙烯酸酯作为功能单体和交联单体合成的DUL-纳米分子印迹聚合物对DUL分析物表现出最高的亲和力。DPV化学传感器测定了血浆中DUL的线性动态浓度范围,从10 pM到676 nM,检测限(LOD)为1.6 pM,优于EIS化学传感器。高效液相色谱-紫外测量证实了DUL电化学化学传感的结果。