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E Ohtsuka

Publications and source records attributed to E Ohtsuka.

At least 73 records · Page 4Linked to original sources

Constructing an efficient trans-acting genomic HDV ribozyme.

We have engineered a genomic HDV ribozyme to construct several trans-acting ribozymes for use in trans to cleave target RNAs. Among the 10 different combinations attempted, only HDV88-Trans had cleavage activity on the 13-nucleotide substrate, R13, in vitro. To improve the cleavage efficiency, at least in vitro, of the HDV88-Trans ribozyme (kclv = 0.022 min(-1)), we have constructed several variants that differ in forming stem II (length) in the pseudoknot secondary structure model. When cleavage rate constants were analyzed and compared among variants of HDV88-Trans, HDV88-Trans-4 yielded kclv = 1.7 min(-1). HDV88-Trans-4 thus represents the highest active genomic HDV ribozyme that functions in trans thus far constructed, and has activity under physiological conditions (pH 7.1 at 37 degrees C with 1 mM of MgCl2).

Base Sequence↗

Enhanced folding of hairpin ribozymes with replaced domains.

Reversely joined ribozymes (Komatsu et al., 1995) have been proven to be active. Here we describe the construction of hairpin ribozymes with separated domains, but containing complementary arms for association of the two domains. Linker nucleotides were inserted between the arms and domains. These ribozymes were active under the standard conditions (12 mM MgCl2), depending on the length of the linker. When the complementary arms were covalently joined through a stable loop, these ribozymes showed cleavage activities. However, the K(m) value of the stem-loop ribozymes was found to be larger than that of the parent ribozyme, which can adopt both linear and bent conformations. Kinetic analyses of these modified hairpin ribozymes suggest a higher turnover of the hairpin ribozyme as compared to other small ribozymes. The present ribozymes provide insight into the nature of the domain interaction and are suitable for physicochemical studies on the tertiary structure of the hairpin ribozyme.

Base Sequence↗

Triplex-mediated cleavage of DNA by 1,10-phenanthroline-linked 2'-O-methyl RNA.

We have previously reported that 2'-O-methyl RNAs are efficient probes for duplex DNA. Here we describe the design, synthesis, and DNA cleaving activity of 1,10-phenanthroline (OP)-linked 2'-O-methyl RNA (OP-m). Although a local triple helix was formed, both with OP-m and a control OP-linked DNA at the target sequence of the duplex DNA, the promoter region of the human thrombomodulin gene, the cleavage efficiencies on both strands were not proportional when OP-M was used as a cleavage agent. These results may reflect the structural differences of the respective triple helices and the duplex-triplex junction, formed from the two types of triplex-forming oligonucleotides, 2'-O-methyl RNA and DNA. Since the OP-ms were found to work as preferential purine-strand cutters for duplex DNA, they would be useful as unique tools for genome analysis.

Base Sequence↗

Solution Strucutres of DNA duplexes containing a DNA x RNA hybrid region, d(GG)r(AGAU)d(GAC) x d(GTCATCTCC) and d(GGAGA)r(UGAC) x d(GTCATCTCC).

The solution structures of two DNA duplexes containing a DNA*RNA hybrid region at different sites, d(GG)r(AGAU)d(GAC) x d(GTCATCTCC) (DHD, where D and H represent the DNA and DNA x RNA hybrid segments, respectively) and d(GGAGA)r(UGAC) x d(GTCATCTCC) (DDH), were determined by nuclear magnetic resonance spectroscopy to clarify the structural features of the D-H and H-D junctions. All proton-proton distances were derived from the NOESY spectra, with mixing times of 45 ms, and the restrained molecular dynamics were carried out starting from the typical A- and B-form conformations. Both duplexes were converged from the respective initial structures into structures with RMSD values of less than 1.0 angstrom. These structures were subjected to full relaxation matrix refinement to produce the final structures. In the case of the D-H junction, where the ribonucleotide was linked to the 3'-end of the DNA, the H2' and H2" signals of the deoxynucleotide overlapped completely, and the ribonucleotide had a H1'-H2' coupling constant larger than that of the normal C3'-endo sugar pucker. The dihedral angles, the pseudorotation phase angles, and the helical parameters changed at the H-D junction, but not at the D-H junction. A detailed comparison of the two duplexes revealed the structural heterogeneity between the DNA segment and the DNA x RNA hybrid region and the transitions at the junctions.

Base Sequence↗

3-Amino-1,4-dimethyl-5H-pyrido[4,3-b]indole (Trp-P-1) inhibits the binding activity of T4 endonuclease V to UV-damaged DNA.

3-Amino-1,4-dimethyl-5H-pyrido[4,3-b]indole (Trp-P-1) is a mutagen/carcinogen derived from cooked foods which enhances the induction of mutations and chromosome aberrations by UV without microsomal activation. These co-mutagenic effects are considered to arise from inhibition of DNA excision repair at the incision step. However, the inhibition mechanism has not been clarified. In this study we show, using agarose gel electrophoresis, that Trp-P-1 inhibits incision by T4 endonuclease V, which cleaves DNA at the site of cyclobutane dimers. Trp-P-1 also inhibits the binding of this enzyme to UV-damaged DNA in a gel shift assay. In addition, the results of DNA unwinding assay with topoisomerase I suggest that Trp-P-1 intercalates into DNA molecules. The known intercalators ethidium bromide and acriflavine demonstrate similar effects in these experiments. However, 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine (PhIP), which showed no co-mutagenic effects in our previous study, does not demonstrate such effects. These results suggest that Trp-P-1 changes DNA conformation by intercalation, causing inhibition of binding of repair enzymes to UV-damaged DNA, and this in turn leads to inhibition of DNA excision repair and to co-mutagenic effects.

Carbolines↗

Efficient production of the C-terminal domain of secretory leukoprotease inhibitor as a thrombin-cleavable fusion protein in Escherichia coli.

We have developed a high-level production system for the C-terminal domain of secretory leukoprotease inhibitor (SLPI) to investigate its pharmacological activities. A gene for the C-terminal domain of SLPI, (Asn55-Ala 107)SLPI, was constructed from chemically synthesized deoxyoligonucleotides. It was fused to a gene for the N-terminal portion of human growth hormone via a DNA sequence encoding Leu-Val-Pro-Arg, which can be cleaved by thrombin. The fused gene was expressed in Escherichia coli under the control of a trp promoter, and the fusion protein was obtained as an inclusion body. After sulfonation of the cysteine residues, the sulfonated fusion protein was cleaved at the desired site by thrombin. Sulfonated (Asn55-Ala107) SLPI was refolded in Tris buffer containing reduced and oxidized glutathione. The resulting (Asn55-Ala107) SLPI was purified by cation-exchange chromatography and reverse-phase high performance liquid chromatography. The final yield was 50 mg/I culture. (Asn55-Ala107) SLPI was as active against elastase as, but had less trypsin inhibitory activity than, native SLPI. This system is suitable for the large-scale production of the C-terminal domain of SLPI, which is an elastase-specific inhibitor.

Amino Acid Sequence↗

[Prevention of infections in a case with myelodysplastic syndrome by an intermittent subcutaneous administration of G-CSF].

An 83-year-old male was admitted to our hospital because of pancytopenia and low grade fever on April 19, 1993. On admission, hematological data were as follows: WBC 1,000/microliters with 19% neutrophils, RBC 367 x 10(4)/microliters, Hb 9.5 g/dl and platelets 6.7 x 10(4)/microliters. Bone marrow examination revealed 6.6% myeloblasts and 33.5% erythroblasts. Morphological abnormalities included hypersegmentation, degranulation and pseudo-Pelger's nuclear anomaly in neutrophils. Based on these findings the diagnosis of refractory anemia with excess of blasts (RAEB) of the myelodysplastic syndrome (MDS) was made and therapy with low dose Cytarabine (Ara-C) was initiated in April 1993. The patient had two episodes of severe pneumonia in June and July. Therefore, 75 micrograms/day of G-CSF was given in addition to antibiotic therapy for the second episode of infection in July. Thereafter the severe infection subsided, and G-CSF administration was switched to an intermittent schedule (75 micrograms twice a week) since September. Cytarabine ocfosfate (100 mg/day) was added for 10-14 days at interval 1-2 months from October,1993. He has been well with no episode of infection for more than two year. One major concern regarding the clinical application of G-CSF in MDS patients is related to the possible stimulation of leukemic cell proliferation. Frequent hematological monitoring is necessary in patients with RAEB who are prone to develop acute myeloid leukemia. However, we administered G-CSF at a relatively low dose twice a week for over two year and could successfully prevent infections without inducing the leukemic changes.

Aged↗

An epitope chimeric antigen for the hepatitis C virus serological screening test.

The epitope chimeric antigen, CepCM, composed of the 9 selected major epitope regions (two in NS3, two each in the NS4 of two genotypes, two each in the core of two genotype, and one in the core in hepatitis C virus (HCV) polypeptide), was expressed as a fusion protein of the trpE peptide in E. coli. An ELISA test using this antigen produced the same judgements with most of the panel sera as a second generation HCV screening kit. Though discrepancies were found in twelve samples (5% of the samples), further analysis revealed that eleven samples were indeterminate sera as judged by an immunoblot test. The reactivity found in several seroconversion series sera suggested that CepCM has superior reactivity to HCV infected sera than some second generation kits. These data indicated that an epitope chimeric antigen with a man-made sequence will be a excellent tool for a diagnostic test kit.

Antigens, Viral↗

Effects of ebelactone B, a lipase inhibitor, on intestinal fat absorption in the rat.

Ebelactones A and B, natural products from Streptomyces aburaviensis are potent inhibitors of pancreatic lipase. Lipase is the key enzyme required for the absorption of dietary triglycerides (TG). Ebelactone B inhibited, in a dose-dependent manner, the intestinal absorption of fat after fat-feeding in the rat. The most effective inhibition was observed when the inhibitor was administered at 60 min prior to fat-feeding. When ebelactone B (10 mg/kg) was administered, the serum levels of TG (58%) and cholesterol (36%) were decreased. Since ebelactone B effectively inhibitors absorption of dietary fat, if may provide a promising means for prophylaxis or therapeutics of hyperlipidemia and obesity.

Animals↗

[Acute lymphoblastic leukemia with marked morphologic abnormalities after chemotherapy for gastric cancer].

A 76-year-old man was admitted to our hospital in February, 1994 because of fever and general fatigue. The patient had received radical gastrectomy for gastric cancer in August, 1987 and was subsequently treated with adjuvant chemotherapy using UFT for 25 months. On admission, the leukocyte count was 57,700/microliters with 74% blasts. Bone marrow aspiration revealed proliferation of blasts with marked giant cells and polynucleolar cells. The diagnosis of T-lineage of acute lymphoblastic leukemia (ALL) was then made by analysis of surface markers and T-cell receptor rearrangement. Although combination chemotherapy was initially effective, blasts rapidly reappeared in the peripheral blood, and the patient died of pneumonia in August, 1994. In the presented case, blasts showed marked morphologic abnormalities. It is well known that most cases of therapy-related leukemia deviate from the myeloid lineage, and rarely from the lymphoid lineage. In addition, morphologic abnormalities are rare in de novo ALL. Since such abnormalities were demonstrated in our patient, and UFT was administered for a long period, it is possible that this leukemia occurred as a second malignancy related to UFT treatment.

Aged↗

Atomic model of a pyrimidine dimer excision repair enzyme complexed with a DNA substrate: structural basis for damaged DNA recognition.

T4 endonuclease V is a DNA repair enzyme from bacteriophage T4 that catalyzes the first reaction step of the pyrimidine dimer-specific base excision repair pathway. The crystal structure of this enzyme complexed with a duplex DNA substrate, containing a thymine dimer, has been determined at 2.75 A resolution. The atomic structure of the complex reveals the unique conformation of the DNA duplex, which exhibits a sharp kink with a 60 degree inclination at the central thymine dimer. The adenine base complementary to the 5' side of the thymine dimer is completely flipped out of the DNA duplex and trapped in a cavity on the protein surface. These structural features allow an understanding of the catalytic mechanism and implicate a general mechanism of how other repair enzymes recognize damaged DNA duplexes.

Adenine↗

Modification of primary structures of hairpin ribozymes for probing active conformations.

Hairpin ribozymes consist of two stem-loop domains, and these domains are assumed to interact with each other to produce the self-cleavage activity. We have studied the relationship of the tertiary structure of the hairpin ribozyme and the cleavage activity by dividing and re-joining the domains. A hairpin ribozyme (E50) was divided at the hinge region, and the main part was joined to a substrate (S1) using tri- or penta-cytidylates. These ribozymes retained the cleavage activity in the presence of the rest of the molecule, indicating that the active conformation could be maintained if the two domains interacted with each other. Based on the these results, we designed a new type of hairpin ribozyme by replacing one of the domains. To maintain the interaction of the domains, oligocytidylates were inserted at a junction. These reversely jointed ribozyme complexes showed cleavage activity that was dependent on the linker lengths. These modifications in the primary structure of the hairpin ribozyme confirm the structural requirement for the catalytic reaction and provide information for the correlation of the tertiary structure with the cleavage of the hairpin ribozyme.

Base Sequence↗

Structure-function relationship of the eukaryotic DNA replication factor, proliferating cell nuclear antigen.

Proliferating cell nuclear antigen (PCNA) is essential for eukaryotic DNA replication and functions as a processivity factor of DNA polymerase delta (pol delta). Due to the functional and structural similarity with the beta-subunit of Escherichia coli DNA polymerase III, it has been proposed that PCNA would act as a molecular clamp during DNA synthesis. By site-directed mutagenesis and biochemical analyses, we have studied the functional domains of human PCNA required for stimulation of replication factor C (RF-C) ATPase and DNA synthesis by pol delta. Short deletions from either the N or C termini caused drastic changes in extraction and chromatographic behaviors, suggesting that both of these terminal regions are crucial to fold the tertiary structure of PCNA. The short C-terminal stretch from Lys254 to Glu256 is necessary for stimulation of RF-C ATPase activity, but not for stimulation of DNA synthesis by pol delta. Nine basic amino acids that are essential for activating DNA synthesis by pol delta are positioned at the internal alpha-helices of PCNA. This result is in good agreement with the observation that PCNA has a ring structure similar to the beta-subunit and clamps a template DNA through this positively charged internal surface. Several other charged amino acids are also required to stimulate either RF-C ATPase or pol delta DNA synthesis. Some of them are positioned at loops which are exposed on one of the side surface of PCNA adjacent to the C-terminal loop. In addition, the beta-sheets composing the intermolecular interface of the trimeric PCNA are important for interaction with pol delta. Therefore, the outer surface of PCNA has multiple functional surfaces which are responsible for the interaction with multiple factors. Furthermore, the two side surfaces seem to be functionally distinguishable, and this may determine the orientation of tracking PCNA along the DNA.

Adenosine Triphosphatases↗

Replacements of leucine 87 in human insulin receptor alter affinity for insulin.

In a previous analysis, we identified a point mutation that substituted Pro (CCG) for Leu (CTG) at amino acid 87 in the alpha-subunit of the insulin receptor (IR) in a Japanese patient with leprechaunism. In the present study, we transfected either the wild type (Leu-87) or the mutant (Pro-87) IR cDNA into NIH3T3 cells. Pulse-chase in nonreducing conditions revealed that the dimerization of Pro-87 IR was slightly impaired. However, cell surface biotinylation showed that Pro-87 IR was transported to the cell surface. The Pro-87 IR reduced the insulin binding affinity to about 15% of Leu-87 IR, and the dissociation of insulin in Pro-87 IR was more rapid than in Leu-87 IR. The autophosphorylation of Pro-87 IR was less sensitive to insulin than that of Leu-87 IR, suggesting the reduced insulin binding affinity. Site-directed mutagenesis at amino acid 87 was performed to substitute Ile or Ala for Leu. Both mutant IRs were transported to the cell surface and labeled by cell surface biotinylation. The Ile-87 IR enhanced the insulin binding affinity about 4-fold. The insulin binding affinity of Ala-87 IR was reduced by 85% relative to that of Leu-87 IR. In addition, the dissociation of insulin in Ile-87 IR was slower than in Leu-87 IR, but in Ala-87 IR it was more rapid. These results provide the first direct evidence for a critical role of Leu-87 in binding insulin.

3T3 Cells↗

Recognition of 2'-hydroxyl groups by Escherichia coli ribonuclease HI.

In order to investigate the hydrogen-bonding interactions between Escherichia coli ribonuclease HI and the 2'-hydroxyl functions of the substrate, oligonucleotide duplexes containing 2'-amino-2'-deoxyuridine or 2'-fluoro-2'-deoxyuridine at a specific site were used, and their affinities for the enzyme were determined by kinetic analyses. The results indicate that the hydroxyl groups of the nucleoside 3'-adjacent to the cleaved phosphodiester linkage and the second nucleoside 5' to the cleaved phosphodiester act as both a proton donor and an acceptor and as a proton acceptor, respectively, in the enzyme-substrate complex. A molecular model was constructed using the interactions derived from the results.

Base Sequence↗

Crystal structure of a pyrimidine dimer-specific excision repair enzyme from bacteriophage T4: refinement at 1.45 A and X-ray analysis of the three active site mutants.

Crystallographic study of bacteriophage T4 endonuclease V, which is involved in the initial step of the pyrimidine dimer-specific excision repair pathway, has been carried out with respect to the wild-type and three different mutant enzymes. This enzyme catalyzes the cleavage of the N-glycosyl bond at the 5'-side of the pyrimidine dimer, and subsequently incises the phosphodiester bond at the apyrimidinic site through a beta-elimination reaction. The structure of the wild-type enzyme refined at 1.45 A resolution reveals the detailed molecular architecture. The enzyme is composed of a single compact domain classified as an all-alpha structure. The molecule is stabilized mainly by three hydrophobic cores, two of which include many aromatic side-chain interactions. The structure has a unique folding motif, where the amino-terminal segment penetrates between two major alpha-helices and prevents their direct contact, and it is incompatible with the close-packing category of helices for protein folding. The concave surface, covered with many positive charges, implies an interface for DNA binding. The glycosylase catalytic center, which comprises Glu23 and the surrounding basic residues Arg3, Arg22 and Arg26, lie in this basic surface. The crystal structures of the three active-site mutants, in which Glu23 was replaced by Gln(E23Q) and Asp (E23D), respectively, and Arg3 by Gln (R3Q), have been determined at atomic resolution. The backbone structures of the E23Q and R3Q mutants were almost identical with that of the wild-type, while the E23D mutation induces a small, but significant, change in the backbone structure, such as an increase of the central kink of the H1 helix at Pro25. In the catalytic center of the glycosylase, however, these three mutations do not generate notable movements of protein atoms, except for significant shifts of some bound water molecules. Thus, the structural differences between the wild-type and each mutant are confined to the remarkably small region around their replaced chemical groups. Combined with the biochemical studies and the difference circular dichroism measurements, these results allow us to conclude that the negatively charged carboxyl group of Glu23 is essential for the cleavage of the N-glycosyl bond, and that the positively charged guanidino group of Arg3 is crucial to bind the substrate, a DNA duplex containing a pyrimidine dimer. The amino terminal alpha-amino group is located at a position approximately 4.4 A away from the carboxyl group of Glu23. These structural features are generally consistent with the reaction scheme proposed by Dodson and co-workers.

Amino Acid Sequence↗

Reaction mechanism of T4 endonuclease V determined by analysis using modified oligonucleotide duplexes.

The reaction mechanism of bacteriophage T4 endonuclease V was investigated using modified oligodeoxyribonucleotide duplexes containing a cis-syn thymine dimer. For the pyrimidine dimer glycosylase step, the formation of a covalent intermediate has been proposed. A fluorine atom was attached to the 2'-position of the 5'-component of the thymine dimer site, which could stabilize the covalent complex and prevent the ring opening of the sugar moiety. The strand cleavage of the 12 base pair substrate analog did not occur, although the glycosyl bond was cleaved by this enzyme. A covalent enzyme--substrate complex was separated by gel electrophoresis under denaturing conditions. It was shown that the enzyme molecules were completely converted to a stable complex in the reaction mixture. Two mechanisms have been proposed for the beta-elimination step. A 12-mer containing a phosphorothioate linkage between adjacent thymidines was prepared. The diastereomers were separated, and the absolute configurations were determined. After formation of the thymine dimer and 32P-labeling of the 5'-terminus, these oligonucleotides were annealed to the complementary 12-mer, and the reaction rates of the pyrimidine dimer glycosylase step and the overall reaction for each duplex were measured under the substrate-saturation conditions. The rate constants indicated that the chemical reaction at the beta-elimination step was rate-limiting. Since no difference was observed in the rate constants for the Rp- and Sp-phosphorothioate substrates, it is concluded that the beta-elimination reaction is catalyzed, not by the internucleotide phosphate, but by an amino acid residue of the enzyme.

Base Sequence↗