Sensitive Quantitative Nucleic Acid Detection Using Oligonucleotide Microarrays
- 6 June 2003
- journal article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 125 (26) , 7798-7799
- https://doi.org/10.1021/ja035020q
Abstract
We report a new theoretical approach to optimize the performance and quantify the results of gene expression oligonucleotide microarrays which are widely used in biomedical research. An on-array hybridization isotherm that takes into account the screened Coulomb repulsion between the assayed nucleic acid target and the layer of surface tethered oligonucleotide probes is presented. The hybridization efficiency is found as a function of the genomic target (sequence, length, and concentration), array parameters (probe sequence and length, surface probe density), and hybridization conditions (temperature and buffer ionic strength). We present simple relations for the hybridization signal maximum and the linear dynamic detection range and show explicit criteria for optimization. The approach is based on an extension of our recently published theory (Vainrub, A.; Pettitt, B. M. Phys. Rev. E 2002, 66, art. no.-041905) which we generalize here for the cases of target depletion effects and arbitrary target length.Keywords
This publication has 8 references indexed in Scilit:
- Surface electrostatic effects in oligonucleotide microarrays: Control and optimization of binding thermodynamicsBiopolymers, 2003
- Coulomb blockage of hybridization in two-dimensional DNA arraysPhysical Review E, 2002
- Genome-based pharmacogenetics and the pharmaceutical industryNature Reviews Drug Discovery, 2002
- Thermodynamics of association to a molecule immobilized in an electric double layerChemical Physics Letters, 2000
- Genomics, gene expression and DNA arraysNature, 2000
- Effects of Oligonucleotide Immobilization Density on Selectivity of Quantitative Transduction of Hybridization of Immobilized DNALangmuir, 2000
- Electrochemical Quantitation of DNA Immobilized on GoldAnalytical Chemistry, 1998
- Improved Nearest-Neighbor Parameters for Predicting DNA Duplex StabilityBiochemistry, 1996