Department of Physics and Astronomy, University of Louisville, Louisville, Kentucky, 40208, USA.
Department of Bioengineering, University of Louisville, Louisville, Kentucky, 40208, USA.
Anal Sci. 2021 Oct 10;37(10):1391-1399. doi: 10.2116/analsci.21P010. Epub 2021 Apr 23.
Physical and chemical properties of a redox protein adsorbed to different interfaces of a multilayer immunoassay assembly were studied using a single-mode, electro-active, integrated optical waveguide (SM-EA-IOW) platform. For each interface of the immunoassay assembly (indium tin oxide, 3-aminopropyl triethoxysilane, recombinant protein G, antibody, and bovine serum albumin) the surface density, the adsorption kinetics, and the electron-transfer rate of bound species of the redox-active cytochrome c (Cyt-C) protein were accurately quantified at very low surface concentrations of redox species (from 0.4 to 4% of a full monolayer) using a highly sensitive optical impedance spectroscopy (OIS) technique based on measurements obtained with the SM-EA-IOW platform. The technique is shown here to provide quantitative insights into an important immunoassay assembly for characterization and understanding of the mechanisms of electron transfer rate, the affinity strength of molecular binding, and the associated bio-selectivity. Such methodology and acquired knowledge are crucial for the development of novel and advanced immuno-biosensors.
使用单模、电活性、集成光波导(SM-EA-IOW)平台研究了吸附在多层免疫分析组件不同界面上的氧化还原蛋白的物理和化学性质。对于免疫分析组件的每个界面(氧化铟锡、3-氨丙基三乙氧基硅烷、重组蛋白 G、抗体和牛血清白蛋白),使用基于 SM-EA-IOW 平台获得的测量结果的高灵敏度光学阻抗光谱(OIS)技术,在非常低的氧化还原物种表面浓度(从满单层的 0.4% 到 4%)下,准确量化了结合态氧化还原活性细胞色素 c(Cyt-C)蛋白的表面密度、吸附动力学和电子转移速率。该技术可提供定量见解,有助于对重要的免疫分析组件进行表征和理解电子转移速率、分子结合的亲和力强度以及相关的生物选择性的机制。这种方法和获得的知识对于开发新型先进的免疫生物传感器至关重要。