The effect of surface probe density on DNA hybridization
Author(s) -
Alexander W. Peterson
Publication year - 2001
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/29.24.5163
Subject(s) - surface plasmon resonance , oligonucleotide , hybridization probe , kinetics , duplex (building) , ionic strength , oligomer restriction , dna , ionic bonding , molecular probe , nucleic acid thermodynamics , in situ , biology , dna–dna hybridization , biophysics , receptor–ligand kinetics , analytical chemistry (journal) , materials science , nanotechnology , chemistry , biochemistry , ion , base sequence , nanoparticle , chromatography , quantum mechanics , physics , organic chemistry , aqueous solution
The hybridization of complementary strands of DNA is the underlying principle of all microarray-based techniques for the analysis of DNA variation. In this paper, we study how probe immobilization at surfaces, specifically probe density, influences the kinetics of target capture using surface plasmon resonance (SPR) spectroscopy, an in situ label-free optical method. Probe density is controlled by varying immobilization conditions, including solution ionic strength, interfacial electrostatic potential and whether duplex or single stranded oligonucleotides are used. Independent of which probe immobilization strategy is used, we find that DNA films of equal probe density exhibit reproducible efficiencies and reproducible kinetics for probe/target hybridization. However, hybridization depends strongly on probe density in both the efficiency of duplex formation and the kinetics of target capture. We propose that probe density effects may account for the observed variation in target-capture rates, which have previously been attributed to thermodynamic effects.
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