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Biomedical subjects

S Natori

Publications and source records attributed to S Natori.

At least 271 records · Page 15Linked to original sources

Primary structure of sarcotoxin I, an antibacterial protein induced in the hemolymph of Sarcophaga peregrina (flesh fly) larvae.

The primary structure of sarcotoxin I, a potent bactericidal protein induced in the hemolymph of larvae of Sarcophaga peregrina (flesh fly), was investigated. Sarcotoxin I was a mixture of three proteins (sarcotoxins IA, IB, and IC) with almost identical primary structures. These proteins were found to consist of 39 amino acid residues and to differ in only 2-3 amino acid residues. The amino-terminal half of the molecules was rich in charged amino acids and was hydrophilic, whereas the carboxyl-terminal half was hydrophobic. It is suggested that the carboxyl-terminal half of sarcotoxin I penetrates into the bacterial membrane and that its amino-terminal half rich in basic amino acid residues interacts with acidic phospholipids in the bacterial membrane, resulting in perturbation of the membrane and loss of viability of the bacteria.

Amino Acid Sequence↗

Conformational change of DNA binding subunit of RNA polymerase II on binding to DNA.

The spatial arrangement of the subunits of RNA polymerase II from Ehrlich ascites tumor cells was investigated by measuring the sensitivity of each subunit in the native enzyme to various proteinases. The results showed that the largest two subunits (a and b) were sensitive to all the proteinases tested, whereas two smaller subunits (e and h) were resistant to these enzymes. These results suggest that in the native enzyme subunits e and h are located in the inside of RNA polymerase II, forming a core. It was also found that the conformation of the DNA binding subunit a changes when the enzyme binds to DNA, and it becomes much more susceptible to chymotryptic digestion.

Animals↗

Structural relationships of the three stimulatory factors of RNA polymerase II from Ehrlich ascites tumor cells.

The structural relationships of S-II, S-II', and S-I(b) stimulatory proteins of RNA polymerase II purified from Ehrlich ascites tumor cells were investigated. From analysis of the amino acid compositions and tryptic peptide maps of these proteins labeled with radioiodinated Bolton-Hunter reagent, it was concluded that S-I(b) is a part of S-II located at either the amino- or carboxyl-terminal and that only this region mainly contains radioiodinatable amino acid residues when labeled using 125I. On chymotryptic digestion, S-II was cleaved to 21- and 18-kDa fragments in the presence of DNA. The 21-kDa fragment was found to be sufficient for stimulation of RNA polymerase II. It was suggested that S-II' is formed by phosphorylation of S-II in the domain containing the 18-kDa fragment.

Amino Acids↗

Purification and characterization of an inhibitor of the cysteine protease from the hemolymph of Sarcophaga peregrina larvae.

The hemolymph of Sarcophaga peregrina (flesh fly) larvae was found to contain multiple inhibitors of hemocyte cysteine protease. One of them, named sarcocystatin A, was purified and found to be a mixture of the components sarcocystatin A alpha and A beta in a molar ratio of 2:1. These components can exist in either the associated or dissociated form. The apparent heterogeneity of the protease inhibitors in the hemolymph was found to be partly due to association of sarcocystatin A alpha and A beta.

Animals↗

Induction of selective phosphorylation of a fat body protein of Sarcophaga peregrina larvae by 20-hydroxyecdysone.

20-Hydroxyecdysone was shown to induce selective phosphorylation of a fat body protein of Sarcophaga peregrina larvae with a molecular mass of 30 kDa. This phosphorylation was not associated with synthesis of new protein. Fractionation of 32P-labelled fat body by differential centrifugation showed that this protein was mainly present in the membrane-rich fraction, although we could not specify the membrane. Thus, 20-hydroxyecdysone may modify the function of the fat body by inducing phosphorylation of a specific membrane protein.

Adipose Tissue↗

Immunological analysis of eukaryotic transcription factor S-II in a HeLa cell lysate.

Previous experiments using antibody suggested that a stimulatory protein of RNA polymerase II termed S-II is an essential component of accurate transcription in a HeLa cell lysate (1). In this work a radioimmunoassay system for S-II was developed and it was demonstrated that S-II and RNA polymerase II in a HeLa cell lysate could be separated by sucrose density gradient centrifugation. This suggested that S-II and RNA polymerase II do not exist as a complex in the HeLa cell lysate. Probably, S-II is integrated into the initiation complex when appropriate template DNA and nucleoside triphosphates are added to the lysate.

Centrifugation, Density Gradient↗

Participation of Sarcophaga peregrina humoral lectin in the lysis of sheep red blood cells injected into the abdominal cavity of larvae.

Sarcophaga lectin which is induced in the hemolymph of Sarcophaga peregrina (flesh-fly) larvae when their body wall is injured with a hypodermic needle, was shown to participate in the lysis of sheep red blood cells introduced into the abdominal cavity of the larvae. This finding indicates that humoral lectin plays a role in the defence mechanism of invertebrates. The lysis of sheep red blood cells was enhanced greatly by preinjection of red blood cells, but less by preinjection of other cells. Thus the defence mechanism of this insect seems to be able to distinguish red blood cells from other cells.

Animals↗

Structural analysis of a developmentally regulated 25-kDa protein gene of Sarcophaga peregrina.

In the previous paper, we described the identification of two abundant mRNAs of Sarcophaga peregrina (flesh-fly) which are selectively expressed in the fat body of middle third instar larvae. One of these mRNAs was found to encode a protein with a molecular mass of about 25,000 (25-kDa protein) when translated in vitro (Tamura, H., et al. (1983) Dev. Biol. 99, 145-151). Present paper reports the nucleotide sequence of a 2.3 kb DNA containing the entire gene for the 25-kDa protein. This gene consisted of four exons and contained an open reading frame for 184 amino acids. A CAT box and a TATA box were found in the 5'-flanking sequence. A poly A addition signal of AATAAA was assigned to the non-coding region in the fourth exon. A sequence having 75% homology with SV40 enhancer core sequence was identified in the non-coding region of the first exon.

Adipose Tissue↗

Induction of glycophorin gene expression in cultured murine erythroleukemia cells.

In order to identify the mRNA for mouse glycophorin, mRNA was isolated from immature erythroid cells obtained from the spleens of anemic mice, translated in vitro in mRNA-dependent rabbit reticulocyte lysate, and then immunoprecipitated with a specific antiserum. Glycophorin mRNA was shown to be present only in erythroid cells. In immunofluorescent and in vitro translation studies, it was shown that glycophorin mRNA is absent in uninduced murine erythroleukemia (MEL) cells, but is induced in dimethylsulfoxide-treated differentiating cells.

Animals↗

Effects of various cytochalasins on the IgE-mediated serotonin release from rat basophilic leukemia cells.

The effects of cytochalasins on the antigen-induced serotonin release from rat basophilic leukemia cells were investigated. These drugs could be divided into four groups based on their effect on the release: (1) drugs which enhance the release, (2) drugs which enhance the release at a low dose (10(-7) and 10(-6) M) and inhibit it at a high dose (10(-5) and 10(-4) M), (3) drugs which show only inhibition, and (4) drugs which are inert or slightly stimulate the reaction. Cytochalasins B and D were included in group 1 and chaetoglobosins A, D and J were placed in group 2. Group 3 contained aspochalasins B, D and cytochalasin A, and group 4 included chaetoglobosins E and F. The structure and activity relationships of these drugs are also discussed.

Animals↗

Structure-activity relationship of thirty-nine cytochalasans observed in the effects on cellular structures and cellular events and on actin polymerization in vitro.

The effects of twenty-three natural cytochalasans and sixteen synthetic derivatives on actin-distribution and alteration in morphology of C3H-2K cells, inhibition of lymphocyte capping, and inhibition of actin filament elongation were compared. The effects on cellular level and the in vitro effects showed positive correlation and the structure-activity relationship observed is discussed.

Actins↗

Translation of human macrophage activating factor (for glucose consumption) mRNA in Xenopus laevis oocytes.

Total messenger RNA was extracted from a human T cell hybridoma, clone H-E4-9, which strongly produced macrophage activating factor for glucose consumption (MAF-G). This messenger RNA gave rise to functional MAF-G when translated in Xenopus laevis oocytes. Isoelectric focusing of culture supernatants of the mRNA-microinjected oocytes and the H-E4-9 cells revealed that the former contained MAF-Gs with isoelectric points of pH 5.0 and 3.0 while the latter contained MAF-Gs with isoelectric points of pH 5.0 and pH 3.3. Sucrose density gradient centrifugation analysis showed that MAF-G mRNA prepared from H-E4-9 cells sedimented at about 11.5 S.

Animals↗

Antitumor effect of Sarcophaga lectin on murine transplanted tumors.

Sarcophaga lectin, a lectin purified from the hemolymph of Sarcophaga peregrina (flesh fly) larvae, was found to be therapeutically effective against both ascitic and solid tumors. It was especially effective when injected directly into or around nodules of the syngeneic tumor Meth A transplanted intradermally into BALB/c mice. It also induced cytotoxic activity against L-929 cells when it was added to the culture medium of macrophages in vitro. Similar cytotoxic activity was detected transiently in the serum when it was injected into the abdominal cavity of mice, in which sarcoma 180 cells had been inoculated. Probably, this cytotoxic activity induced by Sarcophaga lectin partly contributes to the elimination of tumors. The possible role of this cytotoxic activity is discussed from the viewpoint of ontogeny.

Animals↗

Identification of target proteins participating in a lectin-dependent macrophage-mediated cytotoxic reaction.

Membrane proteins of mouse macrophages and mammary tumor cells having affinity to Sarcophaga lectin were isolated by affinity chromatography. The electrophoretic profiles and antigenicities of lectin-binding proteins from macrophages and tumor cells were different. Antibody raised against tumor cell lectin-binding proteins inhibited both the binding of the lectin to tumor cells and the lectin-dependent macrophage-mediated cytotoxic reaction. However, it did not inhibit the binding of the lectin to macrophages. It was suggested that the same lectin molecule transmitted different stimuli to macrophages and tumor cells via different receptor proteins.

Animals↗