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Hideki Kambara

Publications and source records attributed to Hideki Kambara.

11 recordsLinked to original sources

Enzyme system for improving the detection limit in pyrosequencing.

Highly sensitive real-time pyrosequencing seems promising for constructing an inexpensive and small DNA sequencer with a low running cost. A DNA sample of a picomole level is usually used in the conventional pyrosequencing based on a luciferase assay coupled with an APS-ATP surfurylase reaction for producing ATP from pyrophosphate (PPi). Although the luminescence intensity could be increased by increasing the amount of luciferase, it was impossible to reduce the target DNA amount because of a large background luminescence due to the luciferase-APS reaction. In this report, a novel approach using a new conversion reaction of PPi to ATP is proposed. This method has a very low background and can produce high signals in the presence of a large amount of luciferase; thus, the sample amount required for sequencing is significantly reduced. The ATP production from PPi is catalyzed with pyruvate orthophosphate dikinase (PPDK) using AMP and phosphoenolpyruvate as the substrates, which are inactive for the luciferase-catalyzed reaction. All of the components in the AMP-PPDK-based pyrosequencing system are suitable for highly sensitive DNA sequencing in one tube. Real-time DNA sequencing with a readable length up to 70 bases was successfully demonstrated by using this system. By increasing the amount of luciferase, as low as 2.5 fmol of DNA templates was accurately sequenced by the proposed method with a novel simple and inexpensive DNA sequencer having a photodiode array as a sensor instead of a PMT or CCD camera. A sample amount as low as 2 orders of magnitude smaller than that used in the conventional pyrosequencer can be used.

Enzymes↗

Multiplex SNP typing by bioluminometric assay coupled with terminator incorporation (BATI).

A multiplex single-nucleotide polymorphism (SNP) typing platform using 'bioluminometric assay coupled with terminator [2',3'-dideoxynucleoside triphosphates (ddNTPs)] incorporation' (named 'BATI' for short) was developed. All of the reactions are carried out in a single reaction chamber containing target DNAs, DNA polymerase, reagents necessary for converting PPi into ATP and reagents for luciferase reaction. Each of the four ddNTPs is dispensed into the reaction chamber in turn. PPi is released by a nucleotide incorporation reaction and is used to produce ATP when the ddNTP dispensed is complementary to the base in a template. The ATP is used in a luciferase reaction to release visible light. Only 1 nt is incorporated into a template at a time because ddNTPs do not have a 3' hydroxyl group. This feature greatly simplifies a sequencing spectrum. The luminescence is proportional to the amount of template incorporated. Only one peak appears in the spectrum of a homozygote sample, and two peaks at the same intensity appear for a heterozygote sample. In comparison with pyrosequencing using dNTP, the spectrum obtained by BATI is very simple, and it is very easy to determine SNPs accurately from it. As only one base is extended at a time and the extension signals are quantitative, the observed spectrum pattern is uniquely determined even for a sample containing multiplex SNPs. We have successfully used BATI to type various samples containing plural target sequence areas. The measurements can be carried out with an inexpensive and small luminometer using a photodiode array as the detector. It takes only a few minutes to determine multiplex SNPs. These results indicate that this novel multiplexed approach can significantly decrease the cost of SNP typing and increase the typing throughput with an inexpensive and small luminometer.

DNA Primers↗

Single nucleotide polymorphism analysis based on minisequencing coupled with a fluorescence microsphere technology.

In this paper, we describe a new method for detection of single nucleotide polymorphisms (SNPs) by applying the minisequencing principle to a fluorescence microsphere format. The specific primer, which was designed to anneal to its target of genomic DNA fragment immediately upstream of the polymorphic site, was immobilized to carboxylated Luminex microspheres as a probe. The primer was hybridized with genomic DNA fragments containing polymorphic sites and extended one base in the presence of biotin labeled ddNTP and DNA polymerase. After the extension reaction, Streptavidin-phycoerythrin was added to a reaction mixture to combine the biotin labeled with ddNTP. The final reaction products were analyzed by a Luminex 100 instrument. The fluorescence intensity of the Streptavidin-phycoerythrin combined with the extended ddNTP-biotin was used to identify the SNPs. The results showed that this method is highly sensitive, specific, and suitable for quantitative SNP detection. There was a good linear relationship between the mutant allele frequencies and the relative fluorescence intensities produced by mutant and wild-type gene fragments. A mutant allele frequency as low as 1.0% was accurately determined.

Alleles↗

A gel-free SNP genotyping method: bioluminometric assay coupled with modified primer extension reactions (BAMPER) directly from double-stranded PCR products.

Inexpensive, high-throughput genotyping methods are needed for analyzing human genetic variations. We have successfully applied the regular bioluminometric assay coupled with modified primer extension reactions (BAMPER) method to single-nucleotide polymorphism (SNP) typing as well as the allele frequency determination for various SNPs. This method includes the production of single-strand target DNA from a genome and a primer extension reaction coupled with inorganic pyrophosphate (PPi) detection by a bioluminometric assay. It is an efficient way to get accurate allele frequencies for various SNPs, while single-strand DNA preparation is labor intensive. The procedure can be simplified in the typing of SNPs. We demonstrate that a modified BAMPER method in which we need not prepare a single-strand DNA can be carried out in one tube. A PCR product is directly used as a template for SNP typing in the new BAMPER method. Generally, tremendous amounts of PPi are produced in a PCR process, as well as many residual dNTPs, and residual PCR primers remain in the PCR products, which cause a large background signal in a bioluminometric assay. Here, shrimp alkaline phosphatase (SAP) and E. coli exonuclease I were used to degrade these components prior to BAMPER detection. The specific primer extension reactions in BAMPER were carried out under thermocycle conditions. The primers were extended to produce large amounts of PPi only when their bases at 3'-termini were complementary to the target. The extension products, PPis, were converted to ATP to be analyzed using the luciferin-luciferase detection system. We successfully demonstrated that PCR products can be directly genotyped by BAMPER in one tube for SNPs with various GC contents. As all reactions can be carried out in a single tube, the method will be useful for realizing a fully automated genotyping system.

Alleles↗

Microchip electrophoresis of tagged probes incorporated with one-colored ddNTP for analyzing single-nucleotide polymorphisms.

We demonstrate a simple and rapid method for SNP typing, allele frequency determination, and trace mutant analysis that works with even an inexpensive detection system. This method is based on microchip electrophoresis of tagged probes incorporated with one-colored ddNTP (METPOC). The assay uses dye terminator incorporation into a pair of probes of different lengths specific to wild- and mutant-type targets, respectively. They are hybridized to the targets prior to ddNTP-Cy-5 incorporation, which occurs only for a matched probe-target duplex. Because the extension reactions for the two probes are carried out simultaneously in one tube and the products from both probes are analyzed in one channel by one-color fluorescence detection, an accurate comparative analysis of SNPs is possible. SNP typing as well as allele frequency determination in the range above 0.1% can easily be carried out using a commercial microchip electrophoresis system in a few minutes.

Alleles↗

Automated bead alignment apparatus using a single bead capturing technique for fabrication of a miniaturized bead-based DNA probe array.

We have developed an automated bead alignment apparatus for fabricating a bead-based DNA probe array inside a capillary. The apparatus uses 16 micro vacuum tweezers to extract single beads from among a large amount of beads in bead stock wells. It then manipulates single beads into the probe array capillaries. Single 100-microm-diameter beads were successfully extracted from the water-contained bead-stock well by the vacuum tweezers, which have inner and outer diameters of 50 and 150 microm. An interesting aspect is that unexpected extra beads adsorbed on the outer wall of the vacuum tweezers can be removed using the surface tension force between the water and the atmosphere. In testing the total performance of this apparatus, the DNA probe arrays with 10 sets of probe-conjugated beads and 2 plain beads were produced in the intended order in the capillaries. The time needed to align the 12 beads was 10 min, and the 16 bead arrays were fabricated simultaneously. After hybridization experiments using these fabricated DNA probe arrays, fluorescence from each bead was clearly observed.

Base Sequence↗

A bead-alignment device with a bead-sized microchamber on a rotating cylinder for fabrication of a miniaturized probe array.

We have developed a compact bead-alignment device with a bead-sized microchamber on a rotating cylinder. The cylinder fits inside a tube with bead-stock pipes containing different probe-conjugated beads and holes for bead-alignment capillaries. The cylinder rotates in the tube, and the microchamber transfers a single 100-microm-diameter bead from a pipe to one of the capillaries in 10 s. By using this process repeatedly, 'bead arrays', which are miniaturized DNA probe arrays in capillaries, were successfully fabricated.

Journal Article↗

DNA probes on beads arrayed in a capillary, 'Bead-array', exhibited high hybridization performance.

A DNA analysis platform called 'Bead-array' is presented and its features when used in hybridization detection are shown. In 'Bead-array', beads of 100- micro m diameter are lined in a determined order in a capillary. Each bead is conjugated with DNA probes, and can be identified by its order in the capillary. This probe array is easily produced by just arraying beads conjugated with probes into the capillary in a fixed order. The hybridization is also easily completed by introducing samples (1-300 micro l) into the capillary with reciprocal flow. For hybridization detection, as little as 1 amol of fluorescent-labeled oligo DNA was detected. The hybridization reaction was completed in 1 min irrespective of the amount of target DNA. When the number of target molecules was smaller than that of probe molecules on the bead, 10 fmol, almost all targets were captured on the bead. 'Bead-array' enables reliable and reproducible measurement of the target quantity. This rapid and sensitive platform seems very promising for various genetic testing tasks.

Base Sequence↗

Application of differential display to identify genes for lung cancer detection in peripheral blood.

A blood assay for detection of lung cancer biomarkers could significantly improve cancer patient prognosis and survival rates. Amplified fragment length polymorphism-differential display (AFLP-DD) was used to identify gene transcripts found in lung cancer tissue and the peripheral blood of lung cancer patients. The clones were evaluated for gene expression in lung cancer tissue, peripheral blood of lung cancer patients and healthy volunteers' blood. The isolated gene transcript clones were found to be from the syndecan 1 gene, collagen 1 gene and 2 novel genes. All 4 transcripts were expressed in normal lung tissue, 4 cultured primary lung cells and 6 lung cancer cell lines. RNA was isolated from peripheral blood samples of 69 lung cancer patients. Reverse transcriptase polymerase chain reaction (RT-PCR) was used to test for the presence of cytokeratin 19 and the 4 gene mRNA transcripts in blood RNA. The positive detection rate of at least 1 of the 5 transcripts was 79% for lung adenocarcinoma and 62% for squamous carcinoma. Using RT-PCR, at least 1 of the markers was found in 53% of stage I patients, 100% of stage II, 71% of stage III and 81% of stage IV lung cancer patients. Blood samples from 20 healthy volunteers were also tested, but only 1 of the 5 transcripts was found in 1 patient. These new molecular markers may aid early detection, staging and follow-up of lung cancer patients by RNA isolated from blood.

Adult↗

Rapid multiplex single nucleotide polymorphism genotyping based on single base extension reactions and color-coded beads.

A single nucleotide polymorphism (SNP) typing method using color-coded beads is promising because it is easy to use and inexpensive. However, the present protocols are not suitable for clinical and diagnostic applications because they need centrifugation for bead-washing. Here, we developed a simplified protocol without a bead-washing procedure that enables SNP typing of PCR amplified fragments in only 30 min.

Journal Article↗

[DNA analysis for the post genome-sequencing era].

With the completion of the human genome sequencing, the new post genome-sequencing era has started. The major subjects are clarifying the function of genes to apply this information to medical as well as various industrial fields. Various DNA analysis methods and instruments for gene expression profiling as well as genetic diversity including SNPs typing are required and have been developed. Here, the history and technologies related to DNA analysis including the Wada project in the early 1980's, and the Human genome project from 1990 are described. Various new technologies have developed in this decade. They include a capillary gel array DNA sequencer, DNA chips, bead probe arrays, a new DNA sequencing method using pyrosequencing and an efficient SNP typing method by BAMPER.

DNA↗