Wang Shiyu, Hossain Md Zakir, Han Tao, Shinozuka Kazuo, Suzuki Takaaki, Kuwana Anna, Kobayashi Haruo
Division of Electronics and Informatics, Graduate School of Science and Engineering, Gunma University 1-5-1 Tenjin-cho, Kiryu 376-8515, Japan.
Gunma University Initiative for Advanced Research (GIAR), Gunma University, Kiryu 376-8515, Japan.
ACS Omega. 2020 Nov 12;5(46):30037-30046. doi: 10.1021/acsomega.0c04429. eCollection 2020 Nov 24.
The strong and specific noncovalent interaction between avidin and biotin is widely exploited in different types of enzyme-linked immunosorbent assay kits, labeled immunosensors, and polymer-based sensing devices for the detection of different biomarkers specific to different diseases such as cancer and influenza. Here, we employed the avidin-biotin technology in a novel gold nanoparticle-decorated graphene field-effect transistor (AuNP-GFET) and demonstrated the specific detection of the biotinylated macromolecules such as biotinylated proteins and nucleotides in the sub-picomolar (pM) range. The AuNP-GFET was constructed by fabricating six pairs of interdigital electrodes on graphene transferred on a SiO/Si substrate. The sensing performance of AuNP-GFET was characterized by the real-time two-terminal electrical current measurement upon injection of the analyte solution into a silicone pool preattached onto the electrodes. Avidin, a tetrameric biotin-binding protein with strong affinity and specificity, immobilized on AuNP-decorated single-layer graphene, was used as the sensing platform and transduced the electrical signal upon binding to the analyte macromolecules. The sensing capability of the AuNP-GFET was tested with the biotinylated protein A. Sensitivity of the present biosensor was estimated to be ∼0.4 pM. The specificity and applicability of the biosensor were confirmed using both synthetic and real samples. Because the biotin label can retain its binding capability to avidin with strong affinity and specificity even after conjugating with varieties of proteins and nucleotides, the present AuNP-GFET biosensor is expected to promote the research in developing different biosensors.
抗生物素蛋白与生物素之间强大而特异的非共价相互作用被广泛应用于不同类型的酶联免疫吸附测定试剂盒、标记免疫传感器以及基于聚合物的传感装置中,用于检测癌症和流感等不同疾病特有的不同生物标志物。在此,我们将抗生物素蛋白-生物素技术应用于一种新型的金纳米颗粒修饰的石墨烯场效应晶体管(AuNP-GFET),并证明了在亚皮摩尔(pM)范围内对生物素化大分子(如生物素化蛋白质和核苷酸)的特异性检测。通过在转移到SiO/Si衬底上的石墨烯上制作六对叉指电极来构建AuNP-GFET。AuNP-GFET的传感性能通过将分析物溶液注入预先附着在电极上的硅胶池中时实时双端电流测量来表征。抗生物素蛋白是一种具有强亲和力和特异性的四聚体生物素结合蛋白,固定在金纳米颗粒修饰的单层石墨烯上,用作传感平台,并在与分析物大分子结合时转换电信号。用生物素化蛋白A测试了AuNP-GFET的传感能力。估计该生物传感器的灵敏度约为0.4 pM。使用合成样品和实际样品均证实了该生物传感器的特异性和适用性。由于生物素标签即使在与各种蛋白质和核苷酸缀合后仍能以强亲和力和特异性保持其与抗生物素蛋白的结合能力, 因此预计目前的AuNP-GFET生物传感器将促进不同生物传感器开发的研究。