Eswaran Muthusankar, Chokkiah Bavatharani, Pandit Santosh, Rahimi Shadi, Dhanusuraman Ragupathy, Aleem Mahaboobbatcha, Mijakovic Ivan
Division of Systems and Synthetic Biology, Department of Biology and Biological Engineering, Chalmers University of Technology, 41296, Göteborg, Sweden.
Nanoelectrochemistry Lab, Department of Chemistry, National Institute of Technology Puducherry, Karaikal, 609609, India.
Small Methods. 2022 Oct;6(10):e2200809. doi: 10.1002/smtd.202200809. Epub 2022 Sep 6.
Field effect transistor (FET)-based nanoelectronic biosensor devices provide a viable route for specific and sensitive detection of cancer biomarkers, which can be used for early stage cancer detection, monitoring the progress of the disease, and evaluating the effectiveness of therapies. On the road to implementation of FET-based devices in cancer diagnostics, several key issues need to be addressed: sensitivity, selectivity, operational conditions, anti-interference, reusability, reproducibility, disposability, large-scale production, and economic viability. To address these well-known issues, significant research efforts have been made recently. An overview of these efforts is provided here, highlighting the approaches and strategies presently engaged at each developmental stage, from the design and fabrication of devices to performance evaluation and data analysis. Specifically, this review discusses the multistep fabrication of FETs, choice of bioreceptors for relevant biomarkers, operational conditions, measurement configuration, and outlines strategies to improve the sensing performance and reach the level required for clinical applications. Finally, this review outlines the expected progress to the future generation of FET-based diagnostic devices and discusses their potential for detection of cancer biomarkers as well as biomarkers of other noncommunicable and communicable diseases.
基于场效应晶体管(FET)的纳米电子生物传感器设备为癌症生物标志物的特异性和灵敏检测提供了一条可行途径,可用于癌症早期检测、监测疾病进展以及评估治疗效果。在将基于FET的设备应用于癌症诊断的道路上,需要解决几个关键问题:灵敏度、选择性、操作条件、抗干扰性、可重复使用性、可重复性、一次性使用、大规模生产以及经济可行性。为了解决这些众所周知的问题,最近已经进行了大量的研究工作。这里提供了这些工作的概述,突出了从设备设计和制造到性能评估和数据分析的每个发展阶段目前所采用的方法和策略。具体而言,本综述讨论了FET的多步制造、相关生物标志物的生物受体选择、操作条件、测量配置,并概述了提高传感性能并达到临床应用所需水平的策略。最后,本综述概述了下一代基于FET诊断设备的预期进展,并讨论了它们检测癌症生物标志物以及其他非传染性和传染性疾病生物标志物的潜力。