Fatty acids and sterols of the tunicate, Salpa thompsoni, from the Antarctic Ocean: chemical composition and hemolytic activity.
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Biomedical subjects
Publications and source records attributed to M Satake.
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Amino acid sequence of human respiratory syncytial virus envelope glycoprotein (G) was deduced from the DNA sequence of a recombinant plasmid and confirmed by limited amino acid microsequencing of purified 90K G protein. The calculated molecular mass of the protein encoded by the only long open reading frame of 298 amino acids was 32,588 daltons and was somewhat smaller than the 36K polypeptide translated in vitro from mRNA selected by this plasmid. Inspection of the sequence revealed a single hydrophobic domain of 23 amino acids capable of membrane insertion at 41 residues from the N-terminus. There was no N-terminal signal sequence and the hydrophilic N-terminal 20 residues probably represent the cytoplasmic tail of the protein. The N-terminally oriented membrane insertion was somewhat analogous to paramyxovirus hemagglutinin-neuraminidase (HN) and influenza neuraminidase (NA). The protein was moderately hydrophilic and rich in hydroxy-amino acids. It was both N- and O-glycosylated with the latter contributing significantly to the net molecular mass 90K.
After depletion of monocytes, natural killer (NK) cells were partially purified from peripheral blood by Percoll density gradient sedimentation. The NK cells were then cultured for 1 d and assayed for their cytotoxicity against various types of normal and malignant target cells. All types of target cells tested were found to be susceptible to NK cells. The susceptible targets were autologous T and B lymphocytes, mitogen-induced T and B blasts, monocytes, large granular lymphocytes, autologous or allogeneic lymphoma and leukemia cells isolated from patients, and cultured cell lines, including those resistant to interferon-activated lymphocytes. Such a broad spectrum of cytotoxicity was demonstrated in 1 d of culture, and freshly prepared NK cells were not cytotoxic, or, if anything, were less cytotoxic. Monocytes and their supernatants, added throughout the course of culture, markedly inhibited the development of their cytotoxicity. These results may suggest that, although NK cells having ability to lyse autologous normal and malignant target cells are present in vivo, their lytic activity is regulated by coexisting monocytes.
Amino-acid sequence of a toxin from sea anemone, Parasicyonis actinostoloides, is determined. The toxin consists of 31 amino acid residues and is cross-linked with four disulphide bridges. The sequence has some similarity to that of toxin III and no similarity to those of toxin I and toxin II both from sea anemone, Anemonia sulcata, or to that of Anthopleurin A from Anthopleura xanthogrammica.
The amino acid sequence of respiratory syncytial virus fusion protein (Fo) was deduced from the sequence of a partial cDNA clone of mRNA and from the 5' mRNA sequence obtained by primer extension and dideoxysequencing. The encoded protein of 574 amino acids is extremely hydrophobic and has a molecular weight of 63371 daltons. The site of proteolytic cleavage within this protein was accurately mapped by determining a partial amino acid sequence of the N-terminus of the larger subunit (F1) purified by radioimmunoprecipitation using monoclonal antibodies. Alignment of the N-terminus of the F1 subunit within the deduced amino acid sequence of Fo permitted us to identify a sequence of lys-lys-arg-lys-arg-arg at the C-terminus of the smaller N-terminal F2 subunit that appears to represent the cleavage/activation domain. Five potential sites of glycosylation, four within the F2 subunit, were also identified. Three extremely hydrophobic domains are present in the protein; a) the N-terminal signal sequence, b) the N-terminus of the F1 subunit that is analogous to the N-terminus of the paramyxovirus F1 subunit and the HA2 subunit of influenza virus hemagglutinin, and c) the putative membrane anchorage domain near the C-terminus of F1.
A group of novel phosphonoglycosphingolipids was isolated from the tissues of Aplysia. In the present experiment, antiserum was raised against total phosphonoglycosphingolipids isolated from the ganglia. This antiserum seems specific to the oligosaccharide moiety of the glycolipids. It did not react with gangliosides isolated from mammalian brain. Of the total phosphonoglycosphingolipids of the ganglion. GGL-V was strongly reactive, but GGL-I was hardly reactive with the antiserum. The indirect immunoperoxidase method in combination with light microscopy revealed staining of fibrous structures in the neuropil of ganglia, connective tracts and peripheral nerves. These fibrous structures often interconnected with supporting cells (glia cells). However, the neuron and its processes were stained not distinctly. Thus our results indicate that some of the major glycolipids isolated from the ganglion are mainly present in extraneuronal components in the nervous tissues of Aplysia.
This paper describes an automatic quantitative analysis of protein using two-dimensional electrophoresis. We made 2-D electrophoretograms with index spots of some proteins whose mass is known. First, we cut out the protein spots from the background. Then we detected connected regions which may correspond to spot regions and measured their mass as the sum of the gray levels in the region. For confluent spots, we propose a method of separating them by shape-fitting, and examine this method by comparing it with the spot-dividing method.
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On the basis of our recent finding that all narcoleptic patients were HLA-DR2 positive, peripheral blood lymphocyte subsets were examined in 30 HLA-DR2 positive narcoleptic patients by using monoclonal antibodies and a flow cytometry. The percentages of OKIa1+ cells and OKM1+ cells increased significantly, while no quantitative changes were observed in the T cell subsets examined in the present study. No major immunological abnormalities which altered the T cell subpopulations quantitatively were apparent in narcolepsy.
An mRNA sequence of two human respiratory syncytial viral nonstructural protein genes and of a gene for a 22,000-molecular-weight (22K) protein was obtained by cDNA cloning and DNA sequencing. Sequences corresponding to the 5' ends of the respective transcripts were deduced directly by primer extension and dideoxy nucleotide sequencing of the mRNAs. The availability of a bicistronic clone (pRSC6) confirmed the gene order for this portion of the genome. Contrary to other unsegmented negative-stranded RNA viruses, a 19-nucleotide intercistronic sequence was present between the NS1 and NS2 genes. The translation of cloned viral sequences in the bicistronic and monocistronic clones (pRSNS1 and pRSNS2) revealed two moderately hydrophobic proteins of 15,568 and 14,703 daltons. Their similarity in molecular size explained our earlier inability to resolve these proteins. A DNA sequence of an additional recombinant plasmid (pRSA2) revealed a long open reading frame encoding a 22,156-dalton protein containing 194 amino acids. It was relatively basic and moderately hydrophobic. A protein of this size was readily translated in vitro from a viral mRNA hybrid selected by this plasmid and corresponded to an unglycosylated 22K protein seen in purified extracellular virus but not associated with detergent- and salt-resistant cores. A second open reading frame of 90 amino acids partially overlapping with the C terminus of the 22K protein was also present within this sequence. This was reminiscent of the viral matrix protein gene which was previously shown by us to contain two overlapping reading frames. The finding of three additional viral transcripts encoding at least three identifiable proteins in human respiratory syncytial virus was a novel departure from the usual genetic organization of paramyxoviruses. The 5' ends of all three transcripts had a 5'NGGGCAAAU sequence that is common to all viral transcripts analyzed so far. Although there was no obvious homology immediately upstream of the polyadenylate tail, an AGUUA (AGUAA in the case of NS2) was present between 1 and 4 nucleotides upstream of the polyadenylate end of NS1 and 22K protein mRNAs.
In order to deduce the predominant haplotypes in Japanese narcoleptics, we have studied a total of 111 Japanese patients with narcolepsy and six multiple-case families for HLA class I and class II antigens, and for class III HLA-linked complement markers. In Japanese narcoleptics, the most frequent haplotypes were B35-DR2, B15-DR2, and B51-DR2. These haplotypes were rare in normal Japanese population. In contrast, the most frequent haplotype of HLA-DR2 in normal Japanese, A24-C blank-Bw52-C4A*2 B*Q0-BF *S-C2*C-DR2-DQw1, had a decreased frequency to one-third of the normal controls. Haplotypes B35-DR2, B15-DR2, and B51-DR2, which were more frequent among Japanese narcoleptics, were different from the haplotype found more frequently among Caucasoid narcoleptics, A3-Cw7-B7-DR2-DQw1. Haplotype analysis on six families showed that B35-DR2 and other rare haplotypes in normal Japanese were associated with narcolepsy. There were four cases without any signs of narcolepsy among 19 subjects with the disease susceptibility haplotypes. This finding suggests an incomplete penetrance of hypersomnia. Haplotype analysis of family members was also useful for the early detection of the high risk children to narcolepsy.
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A new phosphonoglycosphingolipid containing two 2-aminoethylphosphonate residues was isolated from the skin of Aplysia kurodai, a marine gastropod, using two systems of silicic acid chromatography. By methanolysis, permethylation, mild acid hydrolysis and hydrogen fluoride treatment combined with thin layer chromatography and gas chromatography-mass spectrometry, the new phosphonoglycosphingolipid was shown to be 3-O-MeGal (1----3) GalNAc (1----3) [6'-O-(2-aminoethylphosphonyl) Gal (1----2)] [2-aminoethylphosphonyl (----6)] Gal (1----4) Glc (1----1) ceramide. Most of the fatty acid (90 per cent) was palmitic acid. Octadeca-4-sphingenine and anteiso-nonadeca-4-sphingenine were the major sphingosine bases of the new glycolipid.
This report demonstrates directly, using two-dimensional gel electrophoresis and alloantisera, the following: (a) The DR4 light chains show a structural polymorphism among the Dw4, DKT2, and DYT cells. (b) Most of the class II light chains consist of the DR light chain. (c) The MT3 molecule is distinct from the DR4 molecule in the Dw4, DKT2, and DYT cells. (d) The MT3 molecule does not show any structural heterogeneity among the Dw4, DKT2, and DYT cells. These results suggest that the dissection of the D specificity among Dw4, DKT2, and DYT is mainly caused by the differences of the DR4 molecules.
The MT3 specificity is closely associated with the HLA-DR4, DR7, and DRw9, and is a supertypic specificity. To determine whether the MT3 specificity resides on a novel class II antigen, the MT3 antigen, DR antigen and the DC-like antigen from the DR4-, DR7- and DRw9-homozygous B lymphoid cell lines were identified and compared with one another by two-dimensional gel electrophoresis using alloantisera. The analysis revealed that each of the three antigens exists as a structurally distinct class II antigen in each cell line. The light chains of the MT3, DR and DC-like antigens are different in charge from one another. The molecular weight of the heavy chains of the MT3 and DR antigens is higher than that of the DC-like antigen. On the other hand, no electrophoretic differences are observed between the heavy chains of the MT3 and DR antigens. These results strongly suggest that the MT3 specificity resides on a light chain of a novel class II antigen distinct from the DR antigen and the DC-like antigen. These observations also support our previous proposition that the MT3 antigen belongs to the fourth group of the human class II antigens.
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