Department of Pharmaceutical Analytical Chemistry, Faculty of Pharmacy, Assiut University, Assiut, Egypt.
Department of Pharmaceutical Analytical Chemistry, Faculty of Pharmacy, Assiut University, Assiut, Egypt; Department of Pharmaceutical Chemistry, College of Pharmacy, Najran University, Najran, Kingdom of Saudia Arabia.
Biosens Bioelectron. 2018 Jun 30;109:164-170. doi: 10.1016/j.bios.2018.03.015. Epub 2018 Mar 11.
Novel and sensitive electrochemical sensor was fabricated for the assay of anti-HCV ledipasvir (LEDV) in different matrices. The designed sensor was based on 3D spinel ferromagnetic NiFeO nanospheres and reduced graphene oxide (RGO) supported by morpholinium acid sulphate (MHS), as an ionic liquid (RGO/NSNiFeO/MHS). This sensor design was assigned to synergistically tailor the unique properties of nanostructured ferrites, RGO, and ionic liquid to maximize the sensor response. Electrode modification prevented aggregation of NiFeO increasing electroactive surface area and allowed remarkable electro-catalytic oxidation of LEDV with an enhanced oxidation response. Differential pulse voltammetry was used for detection LEDV in complex matrices whereas; cyclic voltammetry and other techniques were employed to characterize the developed sensor properties. All experimental factors regarding sensor fabrication and chemical sensing properties were carefully studied and optimized. Under the optimum conditions, the designated sensor displayed a wide linear range (0.4-350 ng mL) with LOD of 0.133 ng mL. Additionally, the proposed sensor demonstrated good selectivity, stability and reproducibility, enabling the quantitative detection of LEDV in Harvoni tablets, human plasma and in a pharmacokinetic study. Our findings suggest that the developed sensor is a potential prototype material for fabrication of high-performance electrochemical sensors.
一种新型的、灵敏的电化学传感器被用于不同基质中抗 HCV 药物 ledipasvir(LEDV)的测定。该设计的传感器基于 3D 尖晶石铁磁体 NiFeO 纳米球和由吗啉硫酸(MHS)支撑的还原氧化石墨烯(RGO),作为一种离子液体(RGO/NSNiFeO/MHS)。这种传感器设计被指定为协同调整纳米结构铁氧体、RGO 和离子液体的独特性质,以最大化传感器的响应。电极修饰防止了 NiFeO 的聚集,增加了电活性表面积,并允许 LEDV 的显著电催化氧化,从而增强了氧化响应。差分脉冲伏安法用于复杂基质中 LEDV 的检测,而循环伏安法和其他技术则用于表征所开发的传感器特性。仔细研究和优化了有关传感器制备和化学传感特性的所有实验因素。在最佳条件下,指定的传感器显示出宽的线性范围(0.4-350ng/mL),LOD 为 0.133ng/mL。此外,该传感器表现出良好的选择性、稳定性和重现性,能够在 Harvoni 片剂、人血浆和药代动力学研究中定量检测 LEDV。我们的研究结果表明,所开发的传感器是用于制造高性能电化学传感器的潜在原型材料。