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利用石墨烯场效应晶体管检测白细胞介素-6 蛋白。

Detection of Interleukin-6 Protein Using Graphene Field-Effect Transistor.

机构信息

Department of Electrical, Electronics and Communication Engineering, School of Technology, Gandhi Institute of Technology and Management (GITAM), Bengaluru 561203, Karnataka, India.

Centre for Crystal Growth, Anna University, Chennai 600025, Tamil Nadu, India.

出版信息

Biosensors (Basel). 2023 Aug 22;13(9):834. doi: 10.3390/bios13090834.

Abstract

Universal platforms to analyze biomolecules using sensor devices can address critical diagnostic challenges. Sensor devices like electrical-based field-effect transistors play an essential role in sensing biomolecules by charge probing. Graphene-based devices are more suitable for these applications. It has been previously reported that Graphene Field-Effect Transistor (GFET) devices detect DNA hybridization, pH sensors, and protein molecules. Graphene became a promising material for electrical-based field-effect transistor devices in sensing biomarkers, including biomolecules and proteins. In the last decade, FET devices have detected biomolecules such as DNA molecules, pH, glucose, and protein. These studies have suggested that the reference electrode is placed externally and measures the transfer characteristics. However, the external probing method damages the samples, requiring safety measurements and a substantial amount of time. To control this problem, the graphene field-effect transistor (GFET) device is fabricated with an inbuilt gate that acts as a reference electrode to measure the biomolecules. Herein, the monolayer graphene is exfoliated, and the GFET is designed with an in-built gate to detect the Interleukin-6 (IL-6) protein. IL-6 is a multifunctional cytokine which plays a significant role in immune regulation and metabolism. Additionally, IL-6 subsidizes a variability of disease states, including many types of cancer development, and metastasis, progression, and increased levels of IL-6 are associated with a higher risk of cancer and can also serve as a prognostic marker for cancer. Here, the protein is desiccated on the GFET device and measured, and Dirac point shifting in the transfer characteristics systematically evaluates the device's performance. Our work yielded a conductive and electrical response with the IL-6 protein. This graphene-based transducer with an inbuilt gate gives a promising platform to enable low-cost, compact, facile, real-time, and sensitive amperometric sensors to detect IL-6. Targeting this pathway may help develop treatments for several other symptoms, such as neuromyelitis optica, uveitis, and, more recently, COVID-19 pneumonia.

摘要

通用平台可利用传感器设备来分析生物分子,从而解决关键的诊断挑战。基于电荷探测的传感器设备,如基于场效应晶体管的电传感器,在探测生物分子方面发挥着重要作用。基于石墨烯的器件在这些应用中更为适用。先前有报道称,石墨烯场效应晶体管 (GFET) 器件可用于检测 DNA 杂交、pH 传感器和蛋白质分子。石墨烯已成为用于检测生物标志物(包括生物分子和蛋白质)的基于电的场效应晶体管器件的一种很有前途的材料。在过去十年中,FET 设备已检测到 DNA 分子、pH 值、葡萄糖和蛋白质等生物分子。这些研究表明,参考电极被放置在外部并测量传输特性。然而,外部探测方法会损坏样品,需要进行安全测量并耗费大量时间。为了解决这个问题,石墨烯场效应晶体管 (GFET) 器件被制造为内置栅极,用作测量生物分子的参考电极。在此,单层石墨烯被剥离,内置栅极的 GFET 被设计用于检测白细胞介素 6 (IL-6) 蛋白。IL-6 是一种多功能细胞因子,在免疫调节和代谢中起着重要作用。此外,IL-6 支持多种疾病状态,包括多种类型的癌症发展和转移,并且 IL-6 水平的升高与癌症风险增加相关,也可以作为癌症的预后标志物。在此,蛋白质被干燥在 GFET 器件上并进行测量,并且在传输特性中系统地评估了 Dirac 点偏移以评估器件的性能。我们的工作得到了与 IL-6 蛋白的导电和电响应。这种基于石墨烯的内置栅极换能器为开发低成本、紧凑、简便、实时和灵敏的安培传感器以检测 IL-6 提供了一个很有前途的平台。靶向该途径可能有助于开发针对其他几种症状的治疗方法,如视神经脊髓炎、葡萄膜炎,以及最近的 COVID-19 肺炎。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b49e/10526909/fb186845c1ee/biosensors-13-00834-g001.jpg

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