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基于皱缩石墨烯场效应晶体管生物传感器对多巴胺、白细胞介素-6和新冠病毒蛋白的超灵敏检测

Ultrasensitive Detection of Dopamine, IL-6 and SARS-CoV-2 Proteins on Crumpled Graphene FET Biosensor.

作者信息

Hwang Michael Taeyoung, Park Insu, Heiranian Mohammad, Taqieddin Amir, You Seungyong, Faramarzi Vahid, Pak Angela A, van der Zande Arend M, Aluru Narayana R, Bashir Rashid

机构信息

Department of BioNano Technology Gachon University 1342 Seongnam-Daero, Sujeong-Gu Seongnam Gyeonggi 13120 Republic of Korea.

Micro and Nanotechnology Laboratory University of Illinois at Urbana-Champaign Urbana IL 61801 USA.

出版信息

Adv Mater Technol. 2021 Nov;6(11):2100712. doi: 10.1002/admt.202100712. Epub 2021 Aug 28.

Abstract

Universal platforms for biomolecular analysis using label-free sensing modalities can address important diagnostic challenges. Electrical field effect-sensors are an important class of devices that can enable point-of-care sensing by probing the charge in the biological entities. Use of crumpled graphene for this application is especially promising. It is previously reported that the limit of detection (LoD) on electrical field effect-based sensors using DNA molecules on the crumpled graphene FET (field-effect transistor) platform. Here, the crumpled graphene FET-based biosensing of important biomarkers including small molecules and proteins is reported. The performance of devices is systematically evaluated and optimized by studying the effect of the crumpling ratio on electrical double layer (EDL) formation and bandgap opening on the graphene. It is also shown that a small and electroneutral molecule dopamine can be captured by an aptamer and its conformation change induced electrical signal changes. Three kinds of proteins were captured with specific antibodies including interleukin-6 (IL-6) and two viral proteins. All tested biomarkers are detectable with the highest sensitivity reported on the electrical platform. Significantly, two COVID-19 related proteins, nucleocapsid (N-) and spike (S-) proteins antigens are successfully detected with extremely low LoDs. This electrical antigen tests can contribute to the challenge of rapid, point-of-care diagnostics.

摘要

使用无标记传感方式的生物分子分析通用平台可以应对重要的诊断挑战。电场效应传感器是一类重要的设备,能够通过探测生物实体中的电荷实现即时检测。将皱巴巴的石墨烯用于此应用特别有前景。此前有报道称,在皱巴巴的石墨烯场效应晶体管(FET)平台上使用DNA分子的基于电场效应的传感器的检测限(LoD)。在此,报道了基于皱巴巴的石墨烯FET对包括小分子和蛋白质在内的重要生物标志物的生物传感。通过研究皱折率对石墨烯上双电层(EDL)形成和带隙打开的影响,系统地评估和优化了器件的性能。还表明,一种小的电中性分子多巴胺可以被适配体捕获,其构象变化会引起电信号变化。用特异性抗体捕获了三种蛋白质,包括白细胞介素-6(IL-6)和两种病毒蛋白。所有测试的生物标志物都能以该电学平台上报道的最高灵敏度进行检测。值得注意的是,两种与COVID-19相关的蛋白质,核衣壳(N-)和刺突(S-)蛋白抗原,以极低的检测限成功检测到。这种电学抗原检测有助于应对快速即时诊断的挑战。

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