Micropatterning of DNA-tagged vesicles

被引:79
作者
Städler, B
Falconnet, D
Pfeiffer, I
Höök, F
Vörös, J
机构
[1] Swiss Fed Inst Technol, ETH, Surface Sci & Technol Lab, Dept Mat,BioInterfaceGrp, CH-8093 Zurich, Switzerland
[2] Chalmers Univ Technol, Dept Appl Phys, SE-41296 Gothenburg, Sweden
[3] Univ Gothenburg, SE-41296 Gothenburg, Sweden
关键词
D O I
10.1021/la0482305
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We present a novel concept for the creation of lipid vesicle microarrays based on a patterning approach termed Molecular Assembly Patterning by Lift-off (MAPL). A homogeneous MAPL-based single-stranded DNA microarray was converted into a vesicle array by the use of vesicles tagged with complementary DNAs, permitting sequence-specific coupling of vesicles to predefined surface regions through complementary DNA hybridization. In the multistep process utilized to fulfill this achievement, active spots consisting of PLL-g-PEGbiotin with a resistant PLL-g-PEG background, as provided by the MAPL process, was converted into a DNA array by addition of complexes of biotin-terminated DNA and NeutrAvidin. This was then followed by addition of POPC vesicles tagged with complementary cholesterol-terminated DNA, thus providing specific coupling of vesicles to the surface through complementary DNA hybridization. Quartz crystal microbalance with dissipation (QCM-D) and optical waveguide lightmode spectroscopy monitoring were used to optimize the multistep surface modification process. It was found that the amount of adsorbed biotinDNA-NeutrAvidin complexes decreases with increasing molar ratio of biotinDNA to NeutrAvidin and decreasing ionic strength of the buffer solution. Modeling of the QCM-D data showed that the shape of the immobilized vesicles depends on the amount of available anchoring groups between the vesicles and the surface. Fluorescent microscopy images confirmed the possibility to create well-defined patterns of DNA-tagged, fluorescently labeled vesicles in the micrometer range.
引用
收藏
页码:11348 / 11354
页数:7
相关论文
共 47 条
[1]   BIOMEMBRANES AND NEW HEMOCOMPATIBLE MATERIALS [J].
CHAPMAN, D .
LANGMUIR, 1993, 9 (01) :39-45
[2]   ELLIPSOMETRY AS A TOOL TO STUDY ADSORPTION BEHAVIOR OF SYNTHETIC AND BIOPOLYMERS AT AIR-WATER-INTERFACE [J].
DEFEIJTER, JA ;
BENJAMINS, J ;
VEER, FA .
BIOPOLYMERS, 1978, 17 (07) :1759-1772
[3]   Liposomes for photodynamic therapy [J].
Derycke, ASL ;
de Witte, PAM .
ADVANCED DRUG DELIVERY REVIEWS, 2004, 56 (01) :17-30
[4]   A combined photolithographic and molecular-assembly approach to produce functional micropatterns for applications in the biosciences [J].
Falconnet, D ;
Koenig, A ;
Assi, T ;
Textor, M .
ADVANCED FUNCTIONAL MATERIALS, 2004, 14 (08) :749-756
[5]   Membrane protein microarrays [J].
Fang, Y ;
Frutos, AG ;
Lahiri, J .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2002, 124 (11) :2394-2395
[6]   Structure and function of water channels [J].
Fujiyoshi, Y ;
Mitsuoka, K ;
de Groot, BL ;
Philippsen, A ;
Grubmüller, H ;
Agre, P ;
Engel, A .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2002, 12 (04) :509-515
[7]   DNA microarrays: translation of the genome from laboratory to clinic [J].
Geschwind, DH .
LANCET NEUROLOGY, 2003, 2 (05) :275-282
[8]   DNA-based formation of a supported, three-dimensional lipid vesicle matrix probed by QCM-D and SPR [J].
Granéli, A ;
Edvardsson, M ;
Höök, F .
CHEMPHYSCHEM, 2004, 5 (05) :729-733
[9]   Formation of supported lipid bilayer membranes on SiO2 from proteoliposomes containing transmembrane proteins [J].
Granéli, A ;
Rydström, J ;
Kasemo, B ;
Höök, F .
LANGMUIR, 2003, 19 (03) :842-850
[10]   Aptamer beacons for the direct detection of proteins [J].
Hamaguchi, N ;
Ellington, A ;
Stanton, M .
ANALYTICAL BIOCHEMISTRY, 2001, 294 (02) :126-131