An electrical probe of protein–DNA interactions on DNA-modified surfaces

被引:0
|
作者
Elizabeth M. Boon
Julia E. Salas
Jacqueline K. Barton
机构
[1] California Institute of Technology,Division of Chemistry and Chemical Engineering
来源
Nature Biotechnology | 2002年 / 20卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
DNA charge transport chemistry is found to provide a sensitive method for probing protein-dependent changes in DNA structure and enzymatic reactions. Here we describe the development of an electrochemical assay of protein binding to DNA-modified electrodes based upon the detection of associated perturbations in DNA base stacking. Gold electrode surfaces that were modified with loosely packed DNA duplexes, covalently crosslinked to a redox-active intercalator and containing the binding site of the test protein, were constructed. Charge transport through DNA as a function of protein binding was then assayed. Substantial attenuation in current is seen in the presence of the base-flipping enzymes HhaI methylase and uracil DNA glycosylase, as well as with TATA-binding protein. When restriction endonuclease PvuII (R.PvuII) binds to its methylated target, little base-stacking perturbation occurs and little diminution in current flow is observed. Importantly, the kinetics of restriction by R.PvuII of its nonmethylated target is also easily monitored electrochemically. This approach should be generally applicable to assaying protein–DNA interactions and reactions on surfaces.
引用
收藏
页码:282 / 286
页数:4
相关论文
共 50 条
  • [41] Evaluation of small ligand–protein interaction by ligation reaction with DNA-modified ligand
    Rie Sugita
    Masayasu Mie
    Hisakage Funabashi
    Eiry Kobatake
    Biotechnology Letters, 2010, 32 : 97 - 102
  • [42] Evaluation of small ligand-protein interactions by using T7 RNA polymerase with DNA-modified ligand
    Mie, Masayasu
    Sugita, Rie
    Endoh, Tamaki
    Kobatake, Eiry
    ANALYTICAL BIOCHEMISTRY, 2010, 405 (01) : 109 - 113
  • [43] DNA-modified electrodes: Molecular recognition and electrochemical response
    Nakano, K
    Uchida, S
    Mitsuhashi, Y
    Fujita, Y
    Taira, H
    Maeda, M
    POLYMERS IN SENSORS: THEORY AND PRACTICE, 1998, 690 : 34 - 45
  • [44] A novel DNA-modified indium tin oxide electrode
    Xu, JZ
    Zhu, JJ
    Huang, Q
    Chen, HY
    ELECTROCHEMISTRY COMMUNICATIONS, 2001, 3 (11) : 665 - 669
  • [45] Electrochemical behavior of neomycin at DNA-modified gold electrodes
    Li, Xiuli
    Chen, Yanling
    Huang, Xianyu
    JOURNAL OF INORGANIC BIOCHEMISTRY, 2007, 101 (06) : 918 - 924
  • [46] Electrochemical probe for the monitoring of DNA-protein interactions
    Meunier-Prest, Rita
    Bouyon, Alice
    Rampazzi, Eve
    Raveau, Suzanne
    Andreoletti, Pierre
    Cherkaoui-Malki, Mustapha
    BIOSENSORS & BIOELECTRONICS, 2010, 25 (12): : 2598 - 2602
  • [47] Microarray detection of duplex and triplex DNA binders with DNA-modified gold nanoparticles
    Lytton-Jean, Abigail K. R.
    Han, Min Su
    Mirkin, Chad A.
    ANALYTICAL CHEMISTRY, 2007, 79 (15) : 6037 - 6041
  • [48] Damage to DNA indicated by an electrically heated DNA-modified carbon paste electrode
    Korbut, O
    Bucková, M
    Tarapcík, P
    Labuda, J
    Gründler, P
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2001, 506 (02) : 143 - 148
  • [49] Influence of DNA Sequences on Gas Responses Using DNA-modified Graphene Devices
    Nozaki, Ryo
    Ikuta, Takashi
    Ueno, Kinuko
    Tsukakoshi, Kaori
    Ikebukuro, Kazunori
    Maehashi, Kenzo
    2019 COMPOUND SEMICONDUCTOR WEEK (CSW), 2019,
  • [50] Aggregation of DNA-modified nanospheres depending on added polynucleotides
    Ihara, T
    Kurohara, K
    Jyo, A
    CHEMISTRY LETTERS, 1999, (10) : 1041 - 1042