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Tomoya Shinbata

Publications and source records attributed to Tomoya Shinbata.

2 recordsLinked to original sources

[cDNA microarray technology as a laboratory examination method: a gene expression profiling test for analysis of drug resistance in tumor cells].

cDNA microarray technology permits the simultaneous measurement of the expressions of thousands of genes. The technology is now an indispensable research tool in molecular biology, and the challenge is its development and usage as clinical diagnostic tools. cDNA microarray can be used to identify gene expression profiles in tumor cells which correlate strongly with the treatment responsiveness such as drug resistance and clinical outcome of the disease despite similar phenotypes. For the introduction of cDNA microarray into laboratory examination, many issues need to be resolved. Design of a diagnostic array must be developed with defined sequences based on interpretation of huge quantities of data from experimental arrays to predict treatment responsiveness. Assay quality must be improved in terms of detection sensitivity, reproducibility, and linear dynamic range for RNA quantitation. Generally available instruments, which are much less expensive and more practical, need to be developed. Along with the improvement of the assay as a laboratory examination method, cDNA microarray will facilitate the integration of diagnosis and therapeutics, and the introduction of individual medicines.

Clinical Laboratory Techniques↗

Chimeric gene library construction by a simple and highly versatile method using recombination-dependent exponential amplification.

A simple and efficient method for the construction of chimeric gene libraries termed RDA-PCR (recombination-dependent exponential amplification polymerase chain reaction) was developed by modifying polymerase chain reaction. A chimeric gene library is generated from homologous parental genes with additional primer-annealing sequences at their "heads" and "tails". Two primers ("skew primers") are designed to exclusively anneal to either the heads of maternal genes or the tails of paternal genes. During the RDA-PCR, short annealing/extension periods facilitate homologous recombination. The chimeric sequences can be exponentially amplified to form the chimeric gene library, whereas parental sequences without crossovers are not amplified. As a model, we constructed a chimeric gene library of yellow and green fluorescent protein (yfp and gfp, respectively). The crossover point profile of RDA-PCR clones was compared with those obtained by (modified) family shuffling. PCR restriction fragment polymorphism (PCR-RFLP) analysis of the RDA-PCR clones showed a high content of chimeric genes in the library, whereas family shuffling required the modification using skew primers for selective enrichment of chimeric sequences. PCR-RFLP analysis also indicated that the crossover points of RDA-PCR chimeras were distributed over the entire protein-coding region. Moreover, as few as 2 bp of the continual identity of nucleotides were found at the crossover points at high frequency (30% of the tested clones), suggesting that RDA-PCR resulted in a higher diversity in crossover points than family shuffling.

Bacterial Proteins↗