An Yaqi, Dong Sheying, Chen Hao, Guan Li, Huang Tinglin
School of Chemistry and Chemical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, People's Republic of China.
School of Chemistry and Chemical Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, People's Republic of China.
Bioelectrochemistry. 2022 Oct;147:108201. doi: 10.1016/j.bioelechem.2022.108201. Epub 2022 Jul 2.
The combination of metal organic framework (MOF), covalent organic frameworks (COF) and carbon nanotube (CNT) forms a system due to their synergistic effect, thereby possessing the structural traits of individual components and exhibiting new properties. Herein, we successfully integrated terephthalonitrile-based-COF (TPN-COF)/CNT into the Ce-MOF, designed and synthesized Ce-MOF/TPN-COF/CNT hybrid material to construct a label-free immunosensor for specific detection of carcinomicantigen 125 (CA125). The synthesized composite exhibited abundant active sites and excellent electronic conductivity. As a result, more immunocomplex were immobilized to the carbon paste electrode (CPE) modified by Ce-MOF/TPN-COF/CNT owing to the hydrogen bonding and π-π interaction between triazine ring and trimesic acid ligand, leading to produce an amplified current response. The results of various instrument tests demonstrated that these structural advantages indeed contribute to the low detection limit of 0.000088 U/mL and wide linear range from 0.0001 U/mL to 100 U/mL for the CA125 immunosensor, which was superior to those of other proposed immunosensor. In addition, the constructed CA125 immunosensor exhibits good stability, repeatability, specificity, regeneration characteristics and acceptability in human serum. Therefore, MOF/COF/CNT composite holds promise as an electrode platform for building electrochemical immunosensors in the early diagnosis of cancer.
金属有机框架(MOF)、共价有机框架(COF)和碳纳米管(CNT)由于其协同效应形成了一个体系,从而具备各组分的结构特征并展现出新的性质。在此,我们成功地将对苯二甲腈基COF(TPN-COF)/CNT整合到Ce-MOF中,设计并合成了Ce-MOF/TPN-COF/CNT杂化材料,以构建用于特异性检测癌胚抗原125(CA125)的无标记免疫传感器。合成的复合材料展现出丰富的活性位点和优异的电子导电性。结果,由于三嗪环与均苯三甲酸配体之间的氢键和π-π相互作用,更多的免疫复合物被固定到由Ce-MOF/TPN-COF/CNT修饰的碳糊电极(CPE)上,从而产生放大的电流响应。各种仪器测试结果表明,这些结构优势确实有助于CA125免疫传感器实现0.000088 U/mL的低检测限以及从0.0001 U/mL到100 U/mL的宽线性范围,这优于其他已报道的免疫传感器。此外,构建的CA125免疫传感器在人血清中表现出良好的稳定性、重复性、特异性、再生特性和可接受性。因此,MOF/COF/CNT复合材料有望作为一种电极平台用于构建癌症早期诊断中的电化学免疫传感器。