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Biomedical subjects

R Saiki

Publications and source records attributed to R Saiki.

16 recordsLinked to original sources

Phenotypes of fission yeast defective in ubiquinone production due to disruption of the gene for p-hydroxybenzoate polyprenyl diphosphate transferase.

Ubiquinone is an essential component of the electron transfer system in both prokaryotes and eukaryotes and is synthesized from chorismate and polyprenyl diphosphate by eight steps. p-Hydroxybenzoate (PHB) polyprenyl diphosphate transferase catalyzes the condensation of PHB and polyprenyl diphosphate in ubiquinone biosynthesis. We isolated the gene (designated ppt1) encoding PHB polyprenyl diphosphate transferase from Schizosaccharomyces pombe and constructed a strain with a disrupted ppt1 gene. This strain could not grow on minimal medium supplemented with glucose. Expression of COQ2 from Saccharomyces cerevisiae in the defective S. pombe strain restored growth and enabled the cells to produce ubiquinone-10, indicating that COQ2 and ppt1 are functional homologs. The ppt1-deficient strain required supplementation with antioxidants, such as cysteine, glutathione, and alpha-tocopherol, to grow on minimal medium. This suggests that ubiquinone can act as an antioxidant, a premise supported by our observation that the ppt1-deficient strain is sensitive to H(2)O(2) and Cu(2+). Interestingly, we also found that the ppt1-deficient strain produced a significant amount of H(2)S, which suggests that oxidation of sulfide by ubiquinone may be an important pathway for sulfur metabolism in S. pombe. Ppt1-green fluorescent protein fusion proteins localized to the mitochondria, indicating that ubiquinone biosynthesis occurs in the mitochondria in S. pombe. Thus, analysis of the phenotypes of S. pombe strains deficient in ubiquinone production clearly demonstrates that ubiquinone has multiple functions in the cell apart from being an integral component of the electron transfer system.

Alkyl and Aryl Transferases↗

Reverse dot-blot detection of the African-American beta-thalassemia mutations.

DNA-based diagnosis of the beta thalassemias provides accuracy to newborn screening genetic counseling, and prenatal diagnosis. However, the use of polymerase chain reaction (PCR)-based methods is challenged by the great number of different-beta-thalassemia mutations that exist even within defined ethnic groups. In this regard, the reverse dot-blot method offers a means of screening for several mutations with a single hybridization reaction. We have applied the reverse dot-blot method to the detection of the beta-thalassemia mutations of African-Americans. We used two biotin-labeled primer pairs in a duplex reaction to amplify and label two beta-globin target DNA fragments that encompass all known African-American beta-thalassemia mutations. The PCR products were denatured and hybridized to polyT-tailed, membrane-fixed, allele-specific probe pairs for the hemoglobin (Hb) S, Hb C, and 14 beta-thalassemia mutations and their corresponding wild-type sequences. Seven common mutations plus Hb S and Hb C were included on one diagnostic strip, and seven less common beta-thalassemia mutations were included on another strip. Carefully controlled, high stringency hybridization allowed accurate distinction of these alleles. Reverse dot-blot diagnosis of the less common beta-thalassemia mutations precludes the need for alternative, more technically challenging methods. This method provides a rapid, accurate method for diagnosis of beta thalassemia among African-Americans and other ethnic groups in which beta thalassemia occurs.

Base Sequence↗

Reverse dot-blot detection of Thai beta-thalassaemia mutations.

Pending curative therapy, newborn screening and prenatal diagnosis are essential to the management of beta thalassaemia. Diagnosis using electrophoretic methods is difficult in the presence of composite phenotypes and high Hb F levels. Direct DNA detection of mutant alleles circumvents both problems, but the enormous diversity of beta-thalassaemia mutations poses challenges for this approach. Among PCR-based tests, the reverse dot-blot method enables screening several mutations with a single hybridization reaction. Unfortunately it has often been targeted to only the common mutations of a particular ethnic population, necessitating the use of more arduous detection methods for the less common mutations. We developed a reverse dot-blot strip for the 10 beta-thalassaemia mutations, including the beta-thalassaemic haemoglobinopathies Hb E and Hb Malay, that account for 96% of beta thalassaemia in Thailand, and another strip for six less common Thai mutations. The second strip precludes the need for more technically challenging methods. To avoid problems associated with secondary structure of amplified full-length target DNA, we amplified and labelled beta-globin DNA as two shorter fragments that encompassed all known Thai mutations. Reverse dot-blotting is a rapid, accurate method for detecting beta-thalassaemia mutations.

Base Sequence↗

Genetic analysis using polymerase chain reaction-amplified DNA and immobilized oligonucleotide probes: reverse dot-blot typing.

The reverse dot-blot method is a simple and rapid diagnostic procedure that allows screening of sample for a variety of mutations/polymorphisms in a single hybridization reaction. Several methods of immobilizing the oligonucleotide probes are discussed. The reverse dot-blot method has several unique properties that are valuable in a diagnostic setting: (1) the typing results from a single sample can be located on a single strip. This facilitates scanning and interpretation of the probe reactivity patterns and minimizes the potential for user error. (2) The test can utilize premade typing strips. This minimizes user labor as well as error potential and allows the use of standardized reagents. (3) Unlike dot-blot/oligonucleotide typing, only the PCR product is labeled, eliminating the potential problem of probes labeled to different specific activities. This method has already been used in the areas of forensic genetic typing (the HLA-DQ alpha Amplitype test), tissue typing for transplantation (the HLA-DR beta) test, cystic fibrosis screening, as well as in a variety of research applications.

Amino Acid Sequence↗

Prenatal diagnosis of beta-thalassaemia in Mediterranean populations by dot blot analysis with DNA amplification and allele specific oligonucleotide probes.

In this study, we describe a simple strategy to detect beta-thalassaemia mutations in prospective parents and to make prenatal diagnosis in pregnancies at risk in the Mediterranean population. Screening of prospective parents is carried out by dot blot analysis on enzymatically amplified DNA with a set of oligonucleotide probes complementary to the most common mutations in this population. Prenatal diagnosis is accomplished by the same procedure on enzymatically amplified amniocyte or trophoblast DNA. The main advantages of this procedure are the simplicity, sensitivity (0.05 micrograms of DNA), and rapidity (12-24 h). Further simplification is obtained by amplification of the DNA from crude amniotic cell lysate. The very low amount of fetal material necessary for this analysis eliminates the need to culture amniotic fluid cells and may decrease the fetal loss rate associated with trophoblast sampling. The number of specific DNA sequences obtained by the amplification procedure allowed us to use non-radioactive labelled oligonucleotide probes, which have several advantages compared to radioactive probes.

Alleles↗

DNA sequence and characterization of human class II major histocompatibility complex beta chains from the DR1 haplotype.

Two HLA class II beta-chain clones from a cell line homozygous for the DR1 haplotype have been characterized and sequenced. They represent a DR beta chain (2918.4) and a DQ beta chain (2918.8). Clone 2918.4 has been used to select mRNA from a lymphoblastoid cell line, and this was injected into Xenopus oocytes with mRNA selected with a DR alpha chain. The translation products were immunoprecipitated with a beta-chain-specific monoclonal antibody and electrophoresed on two-dimensional gels. This revealed positive signals in the positions predicted for beta and alpha chains. Sequence comparisons of 2918.4 with previously published DR beta-chain sequences confirm the presence of two regions of variability in the membrane distal domain. Analysis of the sequence of 2918.8 identified it as a DQ beta chain identical to one previously published from a DR3,w6 cell line. We speculate, therefore, that the DQ beta sequence represents the DQ1 specificity shared by the DR1 and DRw6 haplotypes.

Animals↗

Analysis by molecular cloning of the human class II genes.

The HLA class II genes control immune responsiveness to defined antigens; they encode cell surface heterodimers composed of alpha and beta glycopeptides. Recently, cDNA and genomic clones encoding these chains have been isolated, which allows molecular analysis of the class II genes. cDNA clones encoding the alpha chain of the HLA-DR antigen as well as that of another HLA class II antigen have been identified and characterized by nucleotide sequence analysis. These clones have been used as probes to isolate additional class II alpha cDNA clones in cDNA libraries and to identify polymorphisms in genomic DNA. Polymorphic restriction sites have been localized within the HLA-DR alpha gene and used as genetic markers in the analysis of families and of disease (insulin-dependent diabetes mellitus) and control populations. In addition, cDNA clones encoding the DR beta and DC beta chains were used as hybridization probes to identify DNA polymorphism. cDNA clones encoding the DR gamma (Ii) chain have also been identified; unlike the DR alpha and DR beta loci, the DR gamma gene is located on some chromosome other than chromosome 6. The genetic complexity of the human class II alpha and beta loci, as revealed by analysis with cDNA and genomic clones, is greater than that of the murine class II genes. The extent of that complexity will be defined by future work in this area.

Amino Acid Sequence↗

Mapping of the genes encoding the HLA-DR alpha chain and the HLA-related antigens to a chromosome 6 deletion by using genomic blotting.

We have used genomic blotting with DNA from a human cell line that has a small deletion on chromosome 6 (6.3.6) and from its parent cell line (T5-1) to map DNA fragments complementary to cloned DNA sequences encoding the HLA-B7 antigen (class I) and the alpha chain of the HLA-DR antigen (class II). The 6.3.6 variant fails to express the HLA-A, -B, -C, and -DR and MB specificities associated with one of the parental T5-1 haplotypes and has a visible deletion in the short arm of one chromosome 6 (1). The gene locus assignment was based on the expectation that, if the chromosomal location of the DNA sequences used as a hybridization probe were within the deletion, then the relative amount or size (or both) of genomic restriction fragments that hybridize to the probe in T5-1 and in 6.3.6 DNAs should differ predictably. By comparing the genomic blot patterns from T5-1 and 6.3.6 DNAs, we have shown directly that the loss of haplotype expression was due to deletion of the structural genes and have mapped the structural gene for the HLA-DR alpha chain to the chromosomal location (6p2105-6p23) defined by the 6.3.6 deletion. A cDNA clone encoding the alpha chain of the HLA-DR antigen hybridized to two genomic fragments, 4.2 and 3.8 kilobases long, generated by Bgl II digestion of T5-1 DNA. The 4.2-kilobase fragment was absent from DNA derived from the 6.3.6 deletion variant. Thus, this fragment could be assigned to the parental chromosome 6 with the A1, B8, DR3 haplotype, and the 3.8-kilobase fragment, to the chromosome 6 with the A2, B27, DR1 haplotype. In addition, comparison of the T5-1 and 6.3.6 genomic blot patterns obtained with the HLA-B7 probe revealed dosage differences for all of the class I genomic fragments generated by BamHI digestion, suggesting that all of the class I loci map to the region 6p2105-6p23.

Chromosome Deletion↗

Isolation of a cDNA clone for the human HLA-DR antigen alpha chain by using a synthetic oligonucleotide as a hybridization probe.

We have used a synthetic 20-nucleotide hybridization probe to isolate a cDNA clone encoding the alpha chain of the HLA-DR antigen from a cDNA library constructed from membrane-bound poly(A)+ mRNA. A set of synthetic 11-nucleotide fragments, potentially complementary to the codons for amino acids 11-14 of the HLA-DR alpha chain, were used to prime a cDNA synthesis reaction on various poly(A)+ mRNA templates. Extension of the primers in the presence of a single dideoxynucleotide triphosphate resulted in an 18-nucleotide cDNA product whose sequence corresponded to the NH2-terminal amino acids of the HLA-DR alpha chain. An oligonucleotide was synthesized based on this sequence information and its specificity for HLA-DR alpha mRNA was confirmed by primer extension and blot analysis. The cDNA library made from mRNA from the lymphoblastoid cell line CA-SC was probed with 32P-labeled cDNA synthesized on poly(A)+ mRNA from a B-cell line (CA-SC) or from a T-cell line (Molt-4) to enrich for B-cell-specific clones. A set of cDNA clones that hybridized preferentially with the B-cell probe was screened with the 32P-labeled 20-nucleotide probe. The cDNA clone isolated by this procedure is 1,100 nucleotides long; the nucleotide sequence of the 5' end of the cDNA insert corresponds to the amino acid sequence of the HLA-DR alpha chain. Hybridization of this cDNA clone to genomic blots suggests that the HLA-DR alpha chain is encoded by a single-copy gene. One of the restriction endonucleases used in genomic DNA digests reveals a restriction fragment polymorphism.

Amino Acid Sequence↗

Body weight change and nitrogen efficiencies in growing and adult rats fed diets containing various proportions of essential amino acids to total amino acids.

By using amino acid mixtures, a comparative study of nutritional effects of dietary essential amino acid proportions (EA %) has been made between growing and adult rats. Included were adult rats which were repleting from an 8-day protein depletion. It was shown that for growing rats at least 55 EA% was required to attain the maximum values of growth, nitrogen balance, nitrogen balance efficiency (nitrogen balance/nitrogen intake) and protein efficiency ratio (PER). The maximum biological value was found to be 94 at the 50 EA% level. For adult rats, at least 40 EA% was required to gain the maximum values of nitrogen balance and nitrogen balance efficiency under both maintenance and repletion. The biological values were found to be nearly 60 and 80 for maintenance and repletion, respectively.

Amino Acids↗

HLA-DR, DQ and DP typing using PCR amplification and immobilized probes.

A simple, rapid, and precise method of typing HLA class II polymorphism would be valuable in the areas of disease susceptibility, tissue transplantation, individual identification and anthropological genetics. Here we describe a method of analysing class II sequence polymorphism based on polymerase chain reaction (PCR) amplification and hybridization with oligonucleotide probes. One valuable property of sequence-based HLA typing strategies, like oligonucleotide probe hybridization, is that they reveal how and where two alleles differ, not simply that they can be operationally distinguished. The nature and location of HLA polymorphisms appears to be critical in disease association studies and are likely to be important in tissue typing for transplantation. New alleles at the DRB1, DPB1 and DQB1 loci are likely to be identified as this technology is applied to more and more samples, particularly in non-Caucasian ethnic groups. A new allele is uncovered as an unusual pattern of probe binding and then confirmed by sequencing. This pattern is observed because class II polymorphism is localized to specific regions and virtually all 'new' alleles have polymorphisms in the region of probe binding. Obviously, any new allele with a new polymorphic sequence in a region for which typing probes are not available would not be revealed by oligonucleotide typing. With the PCR primers and probes described here, 7 DQA1 alleles, 15 DQB1 alleles, 18 DPB1 alleles, and 32 DRB1 alleles are distinguished. Additional primers and/or probes can, of course, increase the allelic discrimination of oligonucleotide dot blot typing. These horseradish peroxidase (HRP)-labelled oligonucleotide probes are stable (greater than 2 years when stored at 4 degrees C) and the typing system is simple and robust. Over 500 samples from the CEPH pedigrees (unpublished data; A. B. Begovich, et al., manuscript in preparation) and greater than 1000 unrelated samples have been typed by this procedure. Although this dot blot/oligonucleotide hybridization procedure is a powerful and precise method of HLA class II typing, the complexity of the procedure increases as the number of probes required for analysis increases. The reverse dot blot method, based on an array of immobilized probes, allows the typing of individual samples in one single hybridization reaction. In this approach, a panel of unlabelled oligonucleotides are immobilized to a nylon membrane. The PCR product is labelled during the amplification reaction by using biotinylated primers and hybridized to the membrane. The presence of bound PCR product specifically hybridized to a given probe is detected using streptavidin-HRP conjugates and either chromogenic or chemiluminescent substrates.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗