Ministry of Education Key Laboratory of Synthetic and Natural Functional Molecular Chemistry, College of Chemistry and Materials Science, Northwest University, Xi'an 710127, PR China.
Ministry of Education Key Laboratory of Synthetic and Natural Functional Molecular Chemistry, College of Chemistry and Materials Science, Northwest University, Xi'an 710127, PR China.
Biosens Bioelectron. 2016 Nov 15;85:343-350. doi: 10.1016/j.bios.2016.04.100. Epub 2016 Apr 30.
A hybrid nanostructure of Fe3O4 nanospheres and Ag@Au nanorods prepared by polydopamine coating was utilized as nanoelectrocatalyst to construct a novel sandwich-type electrochemical immunosensor. Ag@Au-Fe3O4 nanohybrid modified electrode exhibited much better electrocatalytic activity toward the reduction of hydrogen peroxide than Fe3O4 nanospheres or Ag@Au nanorods due to the synergetic catalytic effect. The immunosensor was prepared by immobilizing the capture antibodies on the amine-terminated nanocomposite of carbon nanofibers-chitosan, whilst the trace tag was prepared by loading detection antibodies on the Ag@Au-Fe3O4 nanocomposite. After the parameter optimization, the amperometric signal increased linearly with human IgG concentration in the broad range of 0.1pgmL(-1) to 5μgmL(-1) with a detection limit of 50fgmL(-1). Meanwhile, the enzyme-free catalyst based immunosensor also showed acceptable selectivity, reproducibility and stability.
通过聚多巴胺涂层制备的 Fe3O4 纳米球和 Ag@Au 纳米棒的杂化纳米结构被用作纳米电催化剂,构建了一种新型三明治型电化学免疫传感器。Ag@Au-Fe3O4 纳米杂化物修饰电极对过氧化氢的还原表现出比 Fe3O4 纳米球或 Ag@Au 纳米棒更好的电催化活性,这是由于协同催化作用。免疫传感器通过将捕获抗体固定在胺封端的碳纳米纤维-壳聚糖纳米复合材料上制备,而痕量标记物则通过将检测抗体加载在 Ag@Au-Fe3O4 纳米复合材料上制备。在参数优化后,安培信号随人 IgG 浓度在 0.1pgmL(-1)至 5μgmL(-1)的宽范围内呈线性增加,检测限为 50fgmL(-1)。同时,基于无酶催化剂的免疫传感器也表现出良好的选择性、重现性和稳定性。