Hybridization and enzymatic extension of Au nanoparticle-bound oligonucleotides

被引:128
作者
Peña, SRN
Raina, S
Goodrich, GP
Fedoroff, NV [1 ]
Keating, CD
机构
[1] Penn State Univ, Dept Chem, University Pk, PA 16802 USA
[2] Penn State Univ, Life Sci Consortium, University Pk, PA 16802 USA
关键词
D O I
10.1021/ja0177915
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We have investigated the impact of steric effects on the hybridization and enzymatic extension of oligonuclectides bound to 12-nm colloidal Au particles. In these experiments, a nanoparticle-bound 12-mer sequence is hybridized either to its solution phase 12-mer complement or to an 88-mer template sequence. The particle-bound oligonucleotide serves as a primer for enzymatic extension reactions, in which covalent incorporation of nucleotides to form the complement of the template is achieved by the action of DNA polymerase. Primers were attached via-C6H12SH,-C12H24SH, and -TTACAATC(6)H(12)SH linkers attached at the 5' end. Primer coverage on the nanoparticles was varied by dilution with (5')HSC(6)H(12)AAA AAA(3'). Hybridization efficiencies were determined as a function of linker length, primer coverage, complement length (12-mer vs 88-mer), and primer:complement concentration ratio. In all cases, hybridization for the 88-mer was less efficient than for the 12-mer. Low primer surface coverages, greater particle-primer separation, and higher primer:complement ratios led to optimal hybridization. Hybridization efficiencies as high as 98% and 75% were observed for the 12-mer and 88-mer, respectively. Enzymatic extension of particle-bound primers was observed under all conditions tested; however, the efficiency of the reaction was strongly affected by linker length and primer coverage. Extension of primers attached by the longest linker was as efficient as the solution-phase reaction.
引用
收藏
页码:7314 / 7323
页数:10
相关论文
共 69 条
[1]   Solid phase DNA amplification: characterisation of primer attachment and amplification mechanisms [J].
Adessi, Celine ;
Matton, Gilles ;
Ayala, Guidon ;
Turcatti, Gerardo ;
Mermod, Jean-Jacques ;
Mayer, Pascal ;
Kawashima, Eric .
NUCLEIC ACIDS RESEARCH, 2000, 28 (20) :87
[2]   Electronic transduction of biocatalytic transformations on nucleic acid-functionalized surfaces [J].
Alfonta, L ;
Willner, I .
CHEMICAL COMMUNICATIONS, 2001, (16) :1492-1493
[3]   Organization of 'nanocrystal molecules' using DNA [J].
Alivisatos, AP ;
Johnsson, KP ;
Peng, XG ;
Wilson, TE ;
Loweth, CJ ;
Bruchez, MP ;
Schultz, PG .
NATURE, 1996, 382 (6592) :609-611
[4]  
Andreadis J D, 2000, Nucleic Acids Res, V28, pe5, DOI 10.1093/nar/28.2.e5
[5]   Gold nanoparticle-based quantitative electrochemical detection of amplified human cytomegalovirus DNA using disposable microband electrodes [J].
Authier, L ;
Grossiord, C ;
Brossier, P ;
Limoges, B .
ANALYTICAL CHEMISTRY, 2001, 73 (18) :4450-4456
[6]   Toward larger chemical libraries: Encoding with fluorescent colloids in combinatorial chemistry [J].
Battersby, BJ ;
Bryant, D ;
Meutermans, W ;
Matthews, D ;
Smythe, ML ;
Trau, M .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2000, 122 (09) :2138-2139
[7]  
Braun A, 1997, CLIN CHEM, V43, P1151
[8]   DNA microarrays with stem-loop DNA probes: preparation and applications [J].
Broude, NE ;
Woodward, K ;
Cavallo, R ;
Cantor, CR ;
Englert, D .
NUCLEIC ACIDS RESEARCH, 2001, 29 (19) :art. no.-e92
[9]   Semiconductor nanocrystals as fluorescent biological labels [J].
Bruchez, M ;
Moronne, M ;
Gin, P ;
Weiss, S ;
Alivisatos, AP .
SCIENCE, 1998, 281 (5385) :2013-2016
[10]   Quantum dot bioconjugates for ultrasensitive nonisotopic detection [J].
Chan, WCW ;
Nie, SM .
SCIENCE, 1998, 281 (5385) :2016-2018