Hubei Collaborative Innovation Center for Rare Metal Chemistry, Hubei Key Laboratory of Pollutant Analysis & Reuse Technology, Department of Chemistry, Hubei Normal University, Huangshi 435002, PR China; State Key Laboratory of Analytical Chemistry for Life Science, Department of Chemistry, Nanjing University, Nanjing 210093, PR China.
Hubei Collaborative Innovation Center for Rare Metal Chemistry, Hubei Key Laboratory of Pollutant Analysis & Reuse Technology, Department of Chemistry, Hubei Normal University, Huangshi 435002, PR China.
Biosens Bioelectron. 2015 Dec 15;74:660-5. doi: 10.1016/j.bios.2015.07.026. Epub 2015 Jul 14.
A Prussian blue (PB) functionalized mesoporous carbon nanosphere (MCN) composite was prepared for loading signal antibody and high-content glucose oxidase (GOD) to obtain a new nanoprobe for sensitive electrochemical immunoassay. The MCN nanocarrier with an average diameter of 180 nm was synthesized by using mesoporous silica nanosphere as a hard template in combination with a hydrothermal carbonization method. This hydrophilic carbon nanomaterial provided an ideal platform for in situ deposition of high-content PB to form the MCN-PB nanocomposite. Based on the step-wise assembly of polyelectrolyte and gold nanoparticles (Au NPs) on the negative-charged nanocomposite, signal antibody and high-content GOD were loaded on this nanocarrier to obtain the nanoprobe. After a sandwich immunoreaction at an Au NPs-modified screen-printed carbon electrode based immunosensor, the nanoprobes were quantitatively captured on the electrode surface to produce sensitive electrochemical response with a PB-mediated GOD catalytic reaction for immunoassay. The high loading of PB and GOD on the nanoprobe greatly amplified the electrochemical signal, leading to the development of a new immunoassay method with high sensitivity. Using human immunoglobulin G as a model analyte, excellent analytical performance including a wide linear range from 0.01 to 100 ng/mL and a low detection limit down to 7.8 pg/mL was obtained. Additionally, the immunosensor showed high specificity, satisfactory stability and repeatability as well as acceptable reliability. The PB-mediated GOD electrochemical system well excluded the conventional interference from the dissolved oxygen. Thus this immunoassay method provides great potentials for practical applications.
普鲁士蓝 (PB) 功能化介孔碳纳米球 (MCN) 复合材料被制备用于负载信号抗体和高含量葡萄糖氧化酶 (GOD),以获得用于灵敏电化学免疫分析的新型纳米探针。MCN 纳米载体的平均直径为 180nm,是通过介孔硅纳米球作为硬模板与水热碳化方法相结合合成的。这种亲水性碳纳米材料为原位沉积高含量 PB 提供了理想的平台,形成了 MCN-PB 纳米复合材料。基于聚电解质和金纳米粒子 (Au NPs) 在带负电荷的纳米复合材料上的逐步组装,信号抗体和高含量 GOD 被负载在这种纳米载体上,得到纳米探针。在 Au NPs 修饰的丝网印刷碳电极基于免疫传感器上进行三明治免疫反应后,纳米探针定量捕获在电极表面,产生敏感的电化学响应,同时 PB 介导 GOD 催化反应进行免疫分析。PB 和 GOD 在纳米探针对的高负载大大放大了电化学信号,从而开发出一种具有高灵敏度的新免疫分析方法。用人免疫球蛋白 G 作为模型分析物,该免疫传感器表现出优异的分析性能,包括从 0.01 到 100ng/mL 的宽线性范围和低至 7.8pg/mL 的检测限。此外,该免疫传感器还表现出高特异性、令人满意的稳定性和重复性以及可接受的可靠性。PB 介导的 GOD 电化学系统很好地排除了溶解氧的常规干扰。因此,这种免疫分析方法具有很大的实际应用潜力。