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Sanzhen Liu

Publications and source records attributed to Sanzhen Liu.

4 recordsLinked to original sources

Analysis of the factors affecting the accuracy of detection for single base alterations by oligonucleotide microarray.

The oligonucleotide microarray, a high-throughput polymorphism detection technology, holds great promise for the characterization of complex genetic variance. To achieve greater sensitivity and specificity for it to be an effective platform technology we present results and discuss some of the factors influencing signal intensities and single-mismatch discrimination in array-based mutation/SNP detection. Probes with a series of concentrations were spotted onto the slide in order to find the optimal concentration with the identifiable satisfying signals and the stable ratios between matched and mismatched probes. It was found that under our experimental conditions, when the initial probe concentration is higher than the maximum immobilization capability of the slide (7.5 microM), the hybridization signal will be saturated and the ratio between matched and mismatched probes will be more stable than at a lower probe concentration. Considering the cost of probes and the systematic stability, a constant spotting concentration of 10 microM was selected. The stability of different types of mismatched oligo-DNA duplexes on the glass surface was also confirmed. The results show that the order of stability of mismatched oligo-DNA duplexes on a glass surface is in general agreement with previous reports conducted using liquid and polyacrylamide gel pads. This suggests that the influence of the mismatched base pair on the stability of the duplex in a solid hybridization system is similar to that in the solution hybridization environment.

Nucleic Acid Heteroduplexes↗

Study on the dynamic behavior of a DNA microarray.

A theoretical dynamic kinetic model was derived and a series of experiments were carried out using low-density microarrays in various concentrations of spotting probe ([P]) and labeling target ([T]). It has been shown that target and probe determined the signal intensity together. At a certain range of DNA concentration, the signal intensity was in proportion to spotting [P]. At the higher DNA concentrations, there was a decrease in hybridization signal intensity, especially in cDNA microarrays. Since the DNA microarray was constructed on a solid surface, steric hindrance, which is induced by the solid surface and the high [P], decreased the probe immobilization efficiency, leading to a decrease of the immobilized probe density. The decreased hybridization efficiency also caused the compression in signal intensity when the target increased. Nevertheless, the intensity ratio of Cy5 to Cy3 was not compressed within a microarray in the two-color system. The ratio of Cy5/Cy3 is only determined by the ratio of two targets and independent of the density and the types of probe. Therefore, the two-color fluorescent strategy is more reasonable and reliable in detection of differential gene expression. All these results indicate that the DNA microarray can be used to detect differently expressed genes, though it cannot be used to detect the absolute mRNA abundance.

Base Sequence↗

Comparison of hybridization behavior between double and single strands of targets and the application of asymmetric PCR targets in cDNA microarray.

Double stranded targets on the cDNA microarray contain representatives of both the coding and noncoding strands, which will introduce hybridization competition with probes. Here, the effect of double and single strands of targets on the signal intensity and the ratios of Cy5/Cy3 within the same slide were compared. The results show that single stranded targets can increase the hybridization efficiency without changing the Cy5/Cy3 ratio. Based on these results, a new strategy was established by generating cDNA targets with asymmetric PCR, instead of conventional PCR, to increase the sensitivity of the cDNA microarray. Furthermore, the feasibility of this approach was validated. The results indicate that the cDNA microarray system based on asymmetric PCR is more sensitive, with no decrease in the reliability and reproducibility as compared with that based on conventional symmetric PCR.

Carbocyanines↗

Systematic comparison of the fidelity of aRNA, mRNA and T-RNA on gene expression profiling using cDNA microarray.

In cDNA microarray technology, there are three main reverse transcription based RNA labeling methods, using total RNA (T-RNA), mRNA, and amplified antisense RNA (aRNA), respectively. However, despite the common use of the three types of RNAs, limited data are available regarding their differences and concordances. In this report, we compared the three methods through two sets of self-comparison experiments using the same RNA sample in all cases. Within each method, duplicate hybridizations are highly reproducible with low biases, which are randomly produced. When combining different RNAs within a single array, correlation coefficients between the two channels are rather low, while the discrepancies are persistent. Furthermore, the fidelity of aRNA and mRNA microarrays in the expression profile study shows no significant difference with standard T-RNA based labeling methods. These results suggest that some RNA abundance are selectively changed during aRNA amplification/mRNA purification processes, but it will not affect the gene expression ratio of the two samples if the same type RNA are used. Therefore all three types of RNAs can be used in expression profiling analysis as long as the test and reference samples are generated by identical method within single study.

Carcinoma, Hepatocellular↗