Graphene field-effect transistor biosensor for detection of biotin with ultrahigh sensitivity and specificity

被引:85
|
作者
Wang, Shiyu [1 ]
Hossain, Md Zakir [2 ]
Shinozuka, Kazuo [3 ]
Shimizu, Natsuhiko [2 ]
Kitada, Shunya [2 ]
Suzuki, Takaaki [4 ]
Ichige, Ryo [4 ]
Kuwana, Anna [1 ]
Kobayashi, Haruo [1 ]
机构
[1] Gunma Univ, Grad Sch Sci & Engn, Div Elect & Informat, 1-5-1 Tenjin Cho, Kiryu, Gunma 3768515, Japan
[2] Gunma Univ, Gunma Univ Initiat Adv Res GIAR, Kiryu, Gunma, Japan
[3] Gunma Univ, Grad Sch Sci & Technol, Div Mol Sci, Kiryu, Gunma, Japan
[4] Gunma Univ, Div Mech Sci & Technol, Kiryu, Gunma 3768515, Japan
来源
关键词
Graphene; Field-effect transistor; Biosensor; Avidin; Biotin; Clinical diagnosis; PEROXIDASE COMPLEX; AVIDIN; BINDING; PROTEIN; ANTIBODY; ELISA; IMMUNOASSAY; POLYMER; SYSTEM;
D O I
10.1016/j.bios.2020.112363
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Because avidin and biotin molecules exhibit the most specific and strongest non-covalent interaction, avidinbiotin technology is widely used in ELISA (enzyme-linked immunosorbent assay) kits for the detection of different bio-macromolecules linked to different diseases including cancer and influenza. Combining the outstanding electrical conductivity (200,000 cm(2) V(-1 )s(-1)) of graphene with the unique avidin and biotin interaction, we demonstrate a novel graphene field-effect transistor (GFET) biosensor for the quantitative detection of bio-macromolecules. The GFET consists of six pairs of interdigital Cr/Au electrodes supported on Si/SiO2 substrate with an avidin immobilized single layer graphene channel as the sensing platform. By monitoring the real time current change upon the addition of biotin solution in bovine serum albumin (BSA) in the silicone pool preformed onto the GFET, the lowest detectable biotin concentration is estimated to be 90 fg/ml (0.37 pM). The specificity of the GFET is confirmed both by controlled and real sample measurements. From the magnitude of current change upon the addition of different concentrations of biotin solutions, the dissociation constant K-d is estimated to be 1.6 x 10(-11) M. Since biotin is capable of conjugating with proteins, nucleotides and other biomacromolecules without altering their properties, the present GFET sensor with its ultra-high sensitivity (0.37 pM) and specificity can be tailored to the rapid point-of-care detection of different types of desired biomolecules at very low concentration level through biotinylation as well as the exogenous biotin in blood serum.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Graphene Field-Effect Transistor for Biosensor
    Matsumoto, Kazuhiko
    Hayashi, Ryota
    Kanai, Yasushi
    Inoue, Koichi
    Ono, Takao
    2016 23RD INTERNATIONAL WORKSHOP ON ACTIVE-MATRIX FLATPANEL DISPLAYS AND DEVICES (AM-FPD), 2016, : 45 - 46
  • [2] RNA Detection Based on Graphene Field-Effect Transistor Biosensor
    Tian, Meng
    Xu, Shicai
    Zhang, Junye
    Wang, Xiaoxin
    Li, Zhenhua
    Liu, Huilan
    Song, Ruihong
    Yu, Ziheng
    Wang, Jihua
    ADVANCES IN CONDENSED MATTER PHYSICS, 2018, 2018
  • [3] Chitosan modified graphene field-effect transistor biosensor for ultrasensitive procalcitonin detection
    Chen, Furong
    Zhang, Ying
    Wang, Mingxuan
    Liu, Jinghai
    Hai, Wenfeng
    Liu, Yushuang
    TALANTA, 2024, 268
  • [4] Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
    Jinjin Sun
    Xiaohui Xie
    Ke Xie
    Shicai Xu
    Shouzhen Jiang
    Junfeng Ren
    Yuefeng Zhao
    Huaqiang Xu
    Jingjing Wang
    Weiwei Yue
    Nanoscale Research Letters, 2019, 14
  • [5] Magnetic Graphene Field-Effect Transistor Biosensor for Single-Strand DNA Detection
    Sun, Jinjin
    Xie, Xiaohui
    Xie, Ke
    Xu, Shicai
    Jiang, Shouzhen
    Ren, Junfeng
    Zhao, Yuefeng
    Xu, Huaqiang
    Wang, Jingjing
    Yue, Weiwei
    NANOSCALE RESEARCH LETTERS, 2019, 14 (1):
  • [6] Detection of MicroRNA Based on Three-Dimensional Graphene Field-Effect Transistor Biosensor
    Song, Ruihong
    Tian, Meng
    Li, Yingxian
    Liu, Jianjian
    Liu, Guofeng
    Xu, Shicai
    Wang, Jihua
    NANO, 2020, 15 (03)
  • [7] Proposal of an Embedded Nanogap Biosensor by a Graphene Nanoribbon Field-Effect Transistor for Biological Samples Detection
    Anvarifard, Mohammad K.
    Ramezani, Zeinab
    Amiri, Iraj Sadegh
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2020, 217 (02):
  • [8] Gold nanoparticles-decorated graphene field-effect transistor biosensor for femtomolar MicroRNA detection
    Cai, Bingjie
    Huang, Le
    Zhang, Hong
    Sun, Zhongyue
    Zhang, Zhiyong
    Zhang, Guo-Jun
    BIOSENSORS & BIOELECTRONICS, 2015, 74 : 329 - 334
  • [9] Graphene-based field-effect transistor biosensor for prostate-specific antigen detection
    Kong, Xiangdong
    Wang, Yunjiao
    Huang, Deping
    Li, Xin
    Shi, Biao
    Zhou, Daming
    Tian, Rong
    Tlili, Chaker
    Wang, Deqiang
    MICROCHEMICAL JOURNAL, 2024, 205
  • [10] Field-Effect Transistor Biosensor for Rapid Detection of Ebola Antigen
    Chen, Yantao
    Ren, Ren
    Pu, Haihui
    Guo, Xiaoru
    Chang, Jingbo
    Zhou, Guihua
    Mao, Shun
    Kron, Michael
    Chen, Junhong
    SCIENTIFIC REPORTS, 2017, 7