Influence of the Thiol Anchor on the Orientation of Surface-Grafted dsDNA Assemblies

被引:5
|
作者
Su, Qiang [1 ]
Noell, Gilbert [1 ]
机构
[1] Univ Siegen, Dept Biol Chem, Noll Jr Res Grp, Fac 4,Organ Chem, Adolf Reichwein Str 2, D-57068 Siegen, Germany
基金
欧洲研究理事会;
关键词
DNA; fluorescence spectroscopy; nanostructures; self-assembly; surface plasmon resonance; PLASMON FLUORESCENCE SPECTROSCOPY; ELECTRON-TRANSFER; PHOSPHORYLATION-DEPHOSPHORYLATION; ELECTROCHEMICAL BIOSENSORS; LIGATION REACTIONS; GOLD ELECTRODES; DNA DUPLEXES; LABEL-FREE; HYBRIDIZATION; OLIGONUCLEOTIDES;
D O I
10.1002/chem.201604652
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The orientation of surface-grafted dsDNA assemblies relative to the surface depends strongly on the nature of the employed thiol anchor. This was shown by ssDNA capture probe strands of 20 bases grafted to a gold surface by three dithiane rings or a single mercaptohexyl group. The capture probe strands were hybridized to one end of complementary ssDNA strands (target) comprising 40, 60, or 80 bases (T-40, T-60, and T-80). At the other end of the targets a fluorophore-labeled reporter probe ssDNA strand of 20 bases was hybridized. To stiffen the DNA assemblies, the targets T-60 and T-80 were further hybridized to ssDNA patches of 20 or 40 bases. Whether the fluorescence intensity, and thus the distance between surface and fluorophore, increases or decreases with increasing target length depends on the thiol anchor. Attempts were made to heal the nicks that are present in the formed dsDNA assemblies by ligation. For enzymatic ligation, the presence of a phosphate at the 5'-end of the reporter probe and a patch is required, which may also influence the fluorescence intensity.
引用
收藏
页码:696 / 702
页数:7
相关论文
共 50 条
  • [21] Surface-Grafted Conjugated Polymers for Hybrid Cellulose Materials
    Peterson, Joseph J.
    Willgert, Markus
    Hansson, Susanne
    Malmstrom, Eva
    Carter, Kenneth R.
    JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2011, 49 (14) : 3004 - 3013
  • [22] Surface-grafted polymer gradients: Formation, characterization, and applications
    Bhat, Rajendra R.
    Tomlinson, Michael R.
    Wu, Tao
    Genzer, Jan
    SURFACE- INITIATED POLYMERIZATION II, 2006, 198 : 51 - 124
  • [23] Surface-grafted, environmentally sensitive polymers for biofilm release
    Ista, LK
    Pérez-Luna, VH
    López, GP
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1999, 65 (04) : 1603 - 1609
  • [24] Surface-grafted molecularly imprinted polymers for protein recognition
    Bossi, A
    Piletsky, SA
    Piletska, EV
    Righetti, PG
    Turner, APF
    ANALYTICAL CHEMISTRY, 2001, 73 (21) : 5281 - 5286
  • [25] Spectroscopic Study of Maghemite Nanoparticles Surface-Grafted with DMSA
    Soler, Maria A. G.
    Lima, Emilia C. D.
    Nunes, Eloiza S.
    Silva, Fabio L. R.
    Oliveira, Aderbal C.
    Azevedo, Ricardo B.
    Morais, Paulo C.
    JOURNAL OF PHYSICAL CHEMISTRY A, 2011, 115 (06): : 1003 - 1008
  • [26] Controlling liposome blood clearance by surface-grafted polymers
    Woodle, MC
    ADVANCED DRUG DELIVERY REVIEWS, 1998, 32 (1-2) : 139 - 152
  • [27] Impact of chain morphology on the lubricity of surface-grafted polysaccharides
    Goren, T.
    Spencer, N. D.
    Crockett, R.
    RSC ADVANCES, 2014, 4 (41): : 21497 - 21503
  • [28] Surface-grafted conjugated polymers for hybrid cellulose materials
    Peterson, Joseph J.
    Willgert, Markus
    Hansson, Susanne
    Malmstrom, Eva
    Carter, Kenneth R.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [29] Engineering surface-grafted polymers for adhesion and friction control
    Zhang, Yunlei
    Yu, Bo
    Ma, Shuanhong
    Ma, Yanfei
    Zhang, Guorui
    Hu, Keling
    Ma, Zhengfeng
    Sheng, Wenbo
    Li, Bin
    Zhou, Feng
    PROGRESS IN POLYMER SCIENCE, 2024, 157
  • [30] Surface-Grafted Polysarcosine as a Peptoid Antifouling Polymer Brush
    Lau, King Hang Aaron
    Ren, Chunlai
    Sileika, Tadas S.
    Park, Sung Hyun
    Szleifer, Igal
    Messersmith, Phillip B.
    LANGMUIR, 2012, 28 (46) : 16099 - 16107