Warsaw University of Technology, Institute of Microelectronics and Optoelectronics, Koszykowa, 75, 00-662, Warszawa, Poland.
Warsaw University of Technology, Institute of Microelectronics and Optoelectronics, Koszykowa, 75, 00-662, Warszawa, Poland; National Institute of Telecommunications, Szachowa 1, 04-894, Warszawa, Poland.
Biosens Bioelectron. 2020 Apr 15;154:112050. doi: 10.1016/j.bios.2020.112050. Epub 2020 Jan 25.
In this work we discuss a new label-free biosensing device based on indium tin oxide (ITO) overlaid section of a multimode optical fiber fused silica core. The sensor has been used to optical measurements also simultaneously interrogated electrochemically (EC). Due to optimized thickness and optical properties of ITO film, a lossy-mode resonance (LMR) could be observed in the optical domain, where electrical properties of the film allowed for application of the sensor as a working electrode in an EC setup. It has been confirmed that the LMR response depends on optical properties of the external medium, as well as potential applied to the electrode during cyclic voltammetry. After the ITO surface functionalization with amine groups and covalently attached biotin, the device has been applied for label-free biosensing of avidin in both the domains simultaneously. On the example of biotin-avidin detection system it was demonstrated that when avidin concentration increases a decrease in current and increase in LMR wavelength shift were recorded in EC and optical domain, respectively. Both optical and EC responses follow the protein interaction process, and thus can be used as cross-verification of the readouts. Moreover, an extended information has been achieved comparing to solely EC interrogation, i.e., the grafting process of biotin and avidin was directly monitored optically displaying individual steps of an incubation procedure.
在这项工作中,我们讨论了一种基于铟锡氧化物(ITO)覆盖部分多模光纤熔石英芯的新型无标记生物传感装置。该传感器已用于光学测量,同时也进行电化学(EC)检测。由于 ITO 薄膜的优化厚度和光学性能,可以在光学域观察到损耗模式共振(LMR),其中薄膜的电学性能允许将传感器用作 EC 装置中的工作电极。已经证实,LMR 响应取决于外部介质的光学性质以及在循环伏安法期间施加到电极的电势。ITO 表面用胺基官能化并通过共价键合生物素后,该器件已应用于无标记生物素亲和素的同时检测。在生物素-亲和素检测系统的示例中,当亲和素浓度增加时,在 EC 和光学域中分别记录到电流减小和 LMR 波长移动增加。光学和 EC 响应都遵循蛋白质相互作用过程,因此可作为读出的交叉验证。此外,与仅进行 EC 检测相比,还获得了扩展的信息,即生物素和亲和素的接枝过程可以直接通过光学显示孵育过程的各个步骤进行监测。