| Literature DB >> 15877823 |
Mugdha Gadgil1, Wei Lian, Chetan Gadgil, Vivek Kapur, Wei-Shou Hu.
Abstract
BACKGROUND: DNA microarray is an invaluable tool for gene expression explorations. In the two-dye microarray, fluorescence intensities of two samples, each labeled with a different dye, are compared after hybridization. To compare a large number of samples, the 'reference design' is widely used, in which all RNA samples are hybridized to a common reference. Genomic DNA is an attractive candidate for use as a universal reference, especially for bacterial systems with a low percentage of non-coding sequences. However, genomic DNA, comprising of both the sense and anti-sense strands, is unlike the single stranded cDNA usually used in microarray hybridizations. The presence of the antisense strand in the 'reference' leads to reactions between complementary labeled strands in solution and may cause the assay result to deviate from true values.Entities:
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Year: 2005 PMID: 15877823 PMCID: PMC1142311 DOI: 10.1186/1471-2164-6-66
Source DB: PubMed Journal: BMC Genomics ISSN: 1471-2164 Impact factor: 3.969
Figure 1Schematic of the system for simulating hybridization for a two-color assay. A: Solution phase, B: spot phase
Nomenclature
| S | cDNA sample anti-sense strand |
| R | Genomic DNA anti-sense strand |
| R' | Genomic DNA sense strand |
| B | Bound (immobilized) anti-sense strand |
| B' | Bound (immobilized) sense strand |
| Subscript 0 | Initial concentration |
| SR' | Double strand formed in solution by hybridization of anti-sense cDNA strand and sense genomic DNA strand |
| RR' | Double strand formed in solution by hybridization of anti-sense and sense genomic DNA strands |
| SB' | Double strand formed on surface by hybridization of anti-sense cDNA strand and sense bound strands |
| RB' | Double strand formed on surface by hybridization of anti-sense genomic DNA strand and sense bound strands |
| R'B | Double strand formed on surface by hybridization of sense genomic DNA strand and anti-sense bound strands |
| h | Height of spot phase |
| r | Radius of spot phase |
| kb | Rate constant of backward reaction of hybridization |
| kf | Rate constant of forward reaction of hybridization between mobile species |
| kf-bound | Rate constant of forward reaction of hybridization between mobile and bound species |
| kt | Rate constant for transport between the two phases |
| γ | Ratio obtained from a hybridization assay using genomic DNA as a reference { = [SB']/([RB']+[R'B])} |
| α | Assay efficiency = (γ1/γ2)/(S10/S20), where 1 and 2 denote samples 1 and 2 |
| εS | Amount of S reacted with R' |
| εR | Amount of R reacted with R' |
Figure 2Effect of hybridization time on α and [SB'] for different levels of RNA abundance and differential expression. 2a) The variation in α with the hybridization time is shown for 8 different cases of abundance level and differential expression listed in Table 2. The parameters used are kf = 106 M-1s-1, kf-bound = 106 M-1s-1, kb = 0 s-1, initial genomic DNA concentration = 1 pM, bound strand concentration = 106 pM, transport rate = 1 s-1 2b) Change in concentration of SB', the intensity corresponding to the cDNA channel, with time for rare and intermediate species. □ S0 = 0.1 pM, ○ S0 = 1 pM, * S0 = 2 pM
List of the combinations of abundance levels and differential expression ratios corresponding to biologically realistic scenarios used in simulations
| 0.1 | 0.2 | 2 | Rare species upregulated 2 fold |
| 1 | 2 | 2 | Intermediate species upregulated 2 fold |
| 20 | 10 | 2 | Abundant species downregulated 2 fold |
| 0.1 | 1 | 10 | Rare species upregulated 10 fold |
| 1 | 10 | 10 | Intermediate species upregulated 10 fold |
| 20 | 200 | 10 | Abundant species upregulated 10 fold |
| 0.1 | 10 | 100 | Rare species upregulated 100 fold |
| 1 | 100 | 100 | Intermediate species upregulated 100 fold |
Figure 3Scatter plot showing log2 transformed ratios obtained from direct cDNA: cDNA hybridization and indirect comparison using genomic DNA as a reference. cDNA: cDNA hybridization was carried out using two RNA samples isolated from S. coelicolor mycelia obtained from liquid culture at early (Sample 1) and late (Sample 2) growth stages. For the indirect comparison using genomic DNA, each of the two samples was hybridized with genomic DNA.
Figure 4Effect of a decreased rate of hybridization between mobile strands and immobilized strands for different differential expression ratios and RNA abundance levels on α. □ Differential expression = 2 fold, × Differential expression = 10 fold, Δ Differential expression = 100 fold. All other parameters are same as in Figure 2.
An illustration of concentrations of different species at a hybridization time of 24 hours. S0 = 10 pM, R0 = = 1 pM
| 106 | 9.6 × 105 | 4.6 × 105 | 0.63 | 0.27 | 2.9 × 105 | 2.5 × 105 | 2.09 | 2.33 |
| 104 | 1.0 × 106 | 9.9 × 105 | 0.94 | 0.40 | 9.3 × 105 | 4.0 × 105 | 1.01 | 2.35 |