一种新的双模板分子印迹修饰铅笔石墨电极及其二阶校准辅助构建一种同时测定铁蛋白和转铁蛋白的新型电子装置

Ali R. Jalalvand
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引用次数: 1

摘要

本文介绍了一种同时测定实际基质中铁蛋白和转铁蛋白的新型电子装置。在此,选择铅笔石墨电极作为平台,并用多壁碳纳米管离子液体和电化学还原的富勒烯-C60对其表面进行改性。最后,用2-氨基-5-巯基-1,3,4-噻二唑与铁蛋白和转铁蛋白作为模板分子电聚合制备的双模板分子印迹聚合物对生物传感器的表面进行了修饰。为了从生物传感器产生方波伏安信号以同时测定铁蛋白和转铁蛋白,将其孵育到含有铁蛋白和铁蛋白的溶液中,然后将其浸入电化学探针溶液中。通过将生物传感器与铁蛋白和转铁蛋白孵育,其分子印迹聚合物层内的通路被铁蛋白和铁蛋白占据,因此,观察到其方波伏安响应高度的降低是合理的。由于方波伏安数据的性质(电位偏移),将生物传感器与铁蛋白和转铁蛋白孵育产生两个严重重叠的峰,而将生物传感器两者孵育产生单个峰。因此,为了同时测定铁蛋白和转铁蛋白,生物传感器在二阶方波伏安数据的帮助下通过三元校准进行辅助,这帮助我开发了一种非常有效的同时测定铁素的电子设备(灵敏度:6.5​μA​nM−1,检测限:0.01​nM)和转铁蛋白(灵敏度:6.1​μA​nM−1,检测限:0.012​nM),其性能与参考方法相当。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A novel dual template molecularly imprinted modified pencil graphite electrode and assisting it by second-order calibration to construct a novel electronic device in advance for simultaneous determination of ferritin and transferrin

A novel dual template molecularly imprinted modified pencil graphite electrode and assisting it by second-order calibration to construct a novel electronic device in advance for simultaneous determination of ferritin and transferrin

This work introduced a novel electronic device for simultaneous determination of ferritin and transferrin in real matrices. Here, a pencil graphite electrode was chosen as a platform and its surface was modified with multiwalled carbon nanotubes-ionic liquid and electrochemically reduced fullerene-C60. Finally, the surface of the biosensor was modified by dual template molecularly imprinted polymers which were produced by electropolymerization of 2-amino-5-mercapto-1, 3, 4-thiadiazole, and ferritin and transferrin as template molecules. To generate a square wave voltammetric signal from the biosensor to simultaneous determination of ferritin and transferrin, it was incubated into a solution having ferritin and transferrin and then, it was immersed into an electrochemical probe solution. By incubation of the biosensor with ferritin and transferrin, the pathways within its molecularly imprinted polymer layer were occupied by ferritin and transferrin therefore, it was reasonable to observe decreasing of the height of its square wave voltammetric response. Because of the nature of the square wave voltammetric data (potential shifts), incubation of the biosensor with ferritin and transferrin produced two severely overlapped peaks while incubation of the biosensor with both of them generated a single peak. Therefore, for simultaneous determination of ferritin and transferrin, the biosensor was assisted by three-way calibration with the help of second-order square wave voltammetric data which helped me to develop a very efficient electronic device for simultaneous determination of ferritin (sensitivity: 6.5 ​μA ​nM−1, limit of detection: 0.01 ​nM) and transferrin (sensitivity: 6.1 ​μA ​nM−1, limit of detection: 0.012 ​nM) in serum samples whose performance was comparable with a reference method.

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