Sakata Toshiya
Department of Materials Engineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.
ACS Omega. 2019 Jul 9;4(7):11852-11862. doi: 10.1021/acsomega.9b01629. eCollection 2019 Jul 31.
In this paper, recent works on biologically coupled gate field-effect transistor (bio-FET) sensors are introduced and compared to provide a perspective. Most biological phenomena are closely related to behaviors of ions and biomolecules. This is why biosensing devices for detecting ionic and biomolecular charges contribute to the direct analysis of biological phenomena in a label-free and enzyme-free manner. Potentiometric biosensors such as bio-FET sensors, which allow the direct detection of these charges on the basis of the field effect, meet this requirement and have been developed as simple devices for diagnostics (IVD). A variety of biological ionic behaviors generated by biomolecular recognition events and cellular activities are being targeted for clinical diagnostics as well as the study of neuroscience using the bio-FET sensors. To realize these applications, bioelectrical interfaces should be formed between the electrolyte solution and the gate electrode by modifying artificially synthesized and biomimetic membranes, resulting in the selective detection of targets based on intrinsic molecular charges. Various types of semiconducting materials, not only inorganic semiconductors but also organic semiconductors, can be selected for use in bio-FET sensors, depending on the application field. In addition, a semiconductor integrated circuit device is ideal for the massively parallel detection of multiple samples. Thus, platforms based on bio-FET sensors are suitable for use in simple and miniaturized electrical circuit systems for IVD to enable the prevention and early detection of diseases.
本文介绍并比较了近期关于生物耦合栅极场效应晶体管(bio-FET)传感器的研究工作,以提供一个视角。大多数生物现象都与离子和生物分子的行为密切相关。这就是为什么用于检测离子和生物分子电荷的生物传感装置有助于以无标记和无酶的方式直接分析生物现象。电位型生物传感器,如bio-FET传感器,能够基于场效应直接检测这些电荷,满足了这一要求,并已被开发为用于体外诊断(IVD)的简单设备。生物分子识别事件和细胞活动产生的各种生物离子行为正被作为临床诊断以及使用bio-FET传感器进行神经科学研究的目标。为了实现这些应用,应通过修饰人工合成膜和仿生膜在电解质溶液和栅电极之间形成生物电界面,从而基于固有分子电荷选择性地检测目标物。根据应用领域的不同,可以选择各种类型的半导体材料用于bio-FET传感器,不仅包括无机半导体,还包括有机半导体。此外,半导体集成电路器件非常适合对多个样品进行大规模并行检测。因此,基于bio-FET传感器的平台适用于用于IVD的简单和小型化电路系统,以实现疾病的预防和早期检测。