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Sindbis virus inhibits phosphatidylcholine biosynthesis in BHK-21 cells.

Sindbis virus inhibits the incorporation of [methyl-3H]choline into the phospholipids of BHK-21 cells and also inhibits the activity of the enzyme that catalyzes the final reaction involved in phosphatidylcholine biosynthesis (cytidine diphosphate-choline:1,2-diacylglycerol cholinephosphotranferase; EC 2.7.8.2).

Cell Line

Amino-terminal sequence analysis of the structural proteins of Sindbis virus.

The structural proteins of Sindbis virus, an enveloped virus which belongs to the Togavirus family, have been subjected to automated Edman degradation using improved techniques. Extensive NH2-terminal sequences of about 50 residues were determined for each of the two membrane glycoproteins. In both cases the NH2 terminus of the molecule was found to be similar in composition to typical water-soluble proteins. The viral capsid protein was found to have a blocked alpha-amino group. This is consistent with other observations that viral proteins derived from the NH2 terminus of precursor molecules are often blocked.

Amino Acid Sequence

Interaction of Sindbis virus with liposomal model membranes.

Radiolabeled Sindbis virus was found to bind to protein-free lipid model membranes (liposomes) derived from extracts of sheep erythrocytes. The virus interaction was dependent on initial pH, and the range of pH dependence (pH 6.0 to 6.8) was the same as the observed with virus-dependent hemagglutination. After the initial interaction, pH changes no longer influenced the virus binding to liposomes. Virus bound to liposomes prepared from a mixture of erythrocyte phospholipids, but the binding was greatly diminished when either cholesterol or phosphatidylethanolamine was omitted from the liposomal lipid mixture. It was concluded that phospholipids and cholesterol, in a bilayer configuration, may be sufficient for specific virus binding in the absence of membrane protein.

Adsorption

Carbohydrate structure of Sindbis virus glycoprotein E2 from virus grown in hamster and chicken cells.

Sindbis virus was used as a probe to examine glycosylation processes in two different species of cultured cells. Parallel studies were carried out analyzing the carbohydrate added to Sindbis glycoprotein E2 when the virus was grown in chicken embryo cells and BHK cells. The Pronase glycopeptides of Sindbis glycoprotein E2 were purified by a combination of ion-exchange and gel filtration chromatography. Four glycopeptides were resolved, ranging in molecular weight from 1,800 to 2,700. Structures are proposed for each of the four glycopeptides, based on data obtained by quantitative composition analyses, methylation analyses, and degradation of the glycopeptides using purified exo- and endoglycosidases. The largest three glycopeptides (S1, S2, and S3) have similar structures but differ in the extent of sialylation. All three contain N-acetylglucosamine, mannose, galactose, and fucose, in a structure similar to oligosaccharides found on other glycoproteins. Glycopeptide S1 has two residues of sialic acid, whereas glycopeptides S2 and S3 contain 1 and 0 residues of sialic acid, respectively. The smallest glycopeptide, S4, contains only N-acetyglucosamine and mannose, and is also similar to mannose-rich oligosaccharides found on other glycoproteins. Each of the complex glycopeptides (S1, S2, or S3) from virus grown in BHK cells is indistinguishable from the corresponding glycopeptides derived from virus grown in chicken cells. Glycopeptide S4 is also very similar in size, composition, and sugar linkages from virus derived from the two hosts. These results suggest that chicken cells and BHK cells have similar glycosylation mechanisms and glycosylate Sindbis glycoprotein E2 in nearly identical ways.

Amino Acids

Immunoferritin studies on the multiplication of Sindbis virus in chick embryo fibroblasts.

Replication of Sindbis virus chick embryo fibroblasts was studied by means of the immunoferritin technique. Virus specific antigens, diffusely distributed in the cytoplasm, were observed at first 3 hours p.i. At the same time in ohter cells ferritin particles in linear arrangement occured at the surface of vesicles. At these places heavily labelled nucleocapsids were observed later on. This means, that the surface of vesicles is a site of assembly of nucleocapsids. Maturation of virus takes place at the cell surface as well as at the vesicles by budding. In early stages of replication maturation at the membrane prevalis.

Animals

Virulence of temperature-sensitive mutants of Sindbis virus in neonatal mice.

The virulence in neonatal mice of temperature-sensitive (ts) mutants of Sindbis virus was determined by measurements of mean survival time and 50% lethal dose after intracerebral injection. For 11 ts mutants, mean survival time was determined by the ribonucleic acid (RNA) phenotype, RNA+ mutants killing the mice sooner than RNA- mutants for the same titer of virus injected. Mortality caused by seven ts mutants was, with one exception, correlated with the proportion of revertants recovered after death. A82, a presumed double mutant showing low reversion, showed no detectable lethality. The pathogenicity of this mutant could be detected by inhibition of weight gain, which was proportional to the titer of virus injected. A low-level persistence, independent of the titer injected, occurred up to 7 days after injection. This was followed by complete clearance. It is concluded that the virulence of Sindbis virus may be considerably altered by mutation, and that this is related to events occurring at the cellular level.

Animals

Synthesis of Sindbis virus nonstructural polypeptides in chicken embryo fibroblasts.

The identification of eight previously undescribed polypeptides in chicken embryo cells infected with Sindbis virus is reported. Seven of these polypeptides were distinguishable from the virus structural polypeptides and their precursors by their molecular weights and tryptic peptide maps. The eighth was closely related to pE2 (Schlesinger and Schlesinger, 1973), a precursor to one of the virus particle glycoproteins. Pulse-chase experiments and the use of an inhibitor of proteolytic cleavage allowed a division of the seven nonstructural (NS) polypeptides into three stable end products (NS p89, NS p82, and NS p60) and four precursors (p230, p215, p150, and p76). The labeling kinetics after synchronous initiation of translation indicated that synthesis of the NS polypeptides started at a single site and showed that the order of the genes coding for the NS polypeptides was (5' leads to 3') NS p60, NS p89, and NS p82. Short-pulse experiments under conditions of both synchronized and nonsynchronized translation suggested that cleavage of the primary translation product of the NS genes occurred only after its synthesis was completed and that the first cleavage removed the C-terminal polypeptide. From these and other experiments, we propose a detailed scheme for the synthesis and processing of Sindbis virus NS polypeptides.

Animals

[Interaction of Sindbis virus with a culture of cells producing oncornavirus].

Electron microscopy and biophysical methods were used for examinations of primarily trypsinized chick fibroblast cell culture spontaneously producing C-type oncornavirus at 1, 6, and 24 hours after inoculation with Sindbis virus. During the first 6 hours rapid maturation and release of oncornavirus from cells were observed. At later intervals oncornavirus production was inhibited. It is assumed that in the system under study, biosynthesis of oncornavirus and Sindbis virus occur separately.

Animals

Immediate glycosylation of Sindbis virus membrane proteins.

The mechanism by which the membrane proteins of Sindbis virus are initially glycosylated during growth of the virus in chick cells was studied. The experiments suggest strongly that the two viral glycoproteins are glycosylated before release from the polysome, and that this glycosylation involves transfer of a large 1800 dalton oligosaccharide to the polypeptide chains. The donor of the oligosaccharide is most probably a lipid.

Animals

In vitro heterologous cytotoxicity by T effector cells from mice immunized with Sindbis virus.

An in vitro correlate of cell-mediated cross-protection among alpha-viruses was demonstrated by cytotoxicity of Sindbis-immune spleen cells from mice to both Sindbis and Semliki Forest virus (SFV)-infected target cells. This cytotoxicity was shown to be mediated by the T cell population of the spleen and was independent of the presence of macrophages or B cells. The time when the level of the lymphocyte-mediated cytotoxicity (LMC) to SFV-infected cells was maximal coincides with the time when immunity to SFV is maximal in vivo, as reported previously, and when adoptive immunity to SFV can be transferred. After one i.p. injection of Sindbis virus, the level of homologous LMC was higher than the level of heterologous LMC. However, following a second injection of Sindbis virus as immunogen, at a time when the mice are cross-protected to SFV, the heterologous LMC was considerably higher than homologous LMC. We propose that there is suppression of the effector T cells specific for Sindbis-infected cells after the second immunizing injection, probably by homologous antibody. In contrast, there appears to be an anamnestic cell-mediated response to SFV.

Animals

Morphogenesis of Sindbis virus in cultured Aedes albopictus cells.

Cultured mosquito cells were found to produce Sindbis virus nearly as efficiently as BHK-21 cells at 28 C. In virtually all of the cells observed in the electron microscope, virus morphogenesis was found to occur within complex vesicular structures which developed after viral infection. Viral nucleocapsids were first seen in these vesicles and appeared to be enveloped within these structures. The process of envelopment within these inclusions differed in some respects from the process previously described for the envelopment of nucleocapsids at the plasma membrane of vertebrae cells. Free nucleocapsids were only rarely seen in the cytoplasm of infected mosquito cells, and budding of virus from the cell surface was detected so infrequently that this process of virus production could not account for the amount of virus produced by the infected cells. The vast majority of extracellular virus was produced by the fusion of the virus-containing vesicles with the plasma membrane releasing mature virions and membrane nucleocapsid complexes in various stages of development.

Aedes

[Immune ascitic fluids in rats to the Sindbis virus].

Data are presented concerning preparation of universal immune ascitic fluid (IAF) to Sindbis virus possessing a high activity and specificity in different serological tests: CFT, HI, NT, AGDPT, and direct immunofluorescence test. The advantages of rat IAF over the serum of these animals consists in a higher specific activity, lower amount of nonspecific hemagglutination inhibitors and waste protein substances. Rat IAF may be used for production of highly specific diagnostic preparations.

Animals

Evidence for covalent attachment of fatty acids to Sindbis virus glycoproteins.

Selective binding of lipid to glycoprotein was detected when [3H]palmitate-labeled Sindbis virus particles or viral-infected cells were disrupted by heating with sodium dodecyl sulfate, and glycoproteins were isolated by electrophoresis in sodium dodecyl sulfate/10% polyacrylamide gels. The smaller glycoprotein (E2) retained 2 to 3 times more labeled lipid than did the larger EI glycoprotein, and the cell-associated glycoprotein precursor (PE2) bound even less lipid. No lipid was associated with the nonglycosylated glycoproteins that accumulated in infected cells treated with tunicamycin. The labeled lipid remained bound to the glycoproteins after exhaustive extraction with chloroform/methanol of virus particles, infected-cell extracts, or isolated glycoproteins, but it could be extracted by chloroform/methanol after treating glycoproteins with mild alkali. Analysis by gas/liquid chromatography showed that 60% of the label was in palmitate and the balance of label was distributed between oleate and stearate. There were approximately 2 mol of fatty acid bound per mol of E1 glycoprotein. Proteolysis of the fatty acid-labeled glycoprotein with pepsin, thermolysin, and Pronase degraded the polypeptide to fragments that retained the fatty acids in an alkali-labile state. These data suggest that a covalent attachment of fatty acid may occur during maturation of the viral glycoproteins.

Fatty Acids

Sindbis virus RNA replication. I. Properties of the 38s RNA species.

Four species of single-stranded virus RNA (49S, 38S, 33S and 26S) were detected in chick embryo fibroblasts infected with Sindbis virus. The relative amounts of these RNAs were unaffected by the m.o.i. There was also no significant difference in the molar proportions of the four RNA species when purified virion RNA was used as the inoculum. These findings suggest that the 38S and 33S species represent products of the transcription of non-defective virion RNAs. Kinetic analyses of RNA synthesis indicated that during a 1 min pulse more radioactivity was associated with the 38S than with the 49S RNA and as the length of the pulse increased, the ratio of 38S/49S decreased, with the 49S appearing as the predominant species. Furthermore, addition of cycloheximide within the first 3 h p.i. resulted in detection of only the 49S species. Synthese of all four species was unaffected when the drug was added after this time period. These data suggest that the 38S species may represent newly synthesized 49S molecules and some protein(s) synthesized within the first 3 h p.i. is necessary for maintaining the 38S conformational form.

Animals

[Identification of a hemadsorbing agent discovered in uninfected mouse L cell cultures and also the same cultures chronically infected with Sindbis virus].

Electron microscope examinations of continuous lines of mouse L cells, both uninfected (L-init) and chronically infected with Sindbis virus (L-SV) revealed accumulations of ribonucleoprotein strands and virions corresponding by their parameters to paramyxoviruses in the cytoplasms of the cells. Further studies showed L-init and L-SV cell lines to have a manifest hemadsorption effect which could be completely inhibited by antiserum to parainfluenza SV5 virus. Immunofluorescence procedures detected intensive fluorescence in the cytoplasm of these cells which was observed only after treatment of the cells with antiserum to SV5 virus. In response to inoculation of cell homogenates of continuous L-init and L-SV cultures guinea pigs developed antihemagglutinating antibody to simian parainfluenza SV5 virus. On the basis of these results it may be assumed that virus-specific structures and viruses identical by their parameters to paramyxoviruses observed in electron microscope examinations of continuous mouse L-init and L-SV cells are simian parainfluenza SV5 virus.

Animals

Absence of a cleavable signal sequence in Sindbis virus glycoprotein PE2.

Partial NH2-terminal sequence analysis has been performed on some products that result from the translation of 26 S mRNA of Sindbis virus either in vivo or in vitro. In vivo products were obtained after pulse-labeling of virus-infected cells. In vitro products were obtained after cell-free translation either in the absence or presence of microsomal membrane vesicles from dog pancreas. The sequence data indicate that the selective translocation across the microsomal membrane required for a distinct portion of one of the integral viral envelope proteins (PE2) is not accompanied by cleavage of its putative signal sequence. Furthermore, the NH2-terminal sequence of a proteolytic derivative (PE'2) that contains the bulk of PE2 and that is generated after exposure of the microsomal vesicles to proteolytic enzymes is identical to that of intact PE2, strongly suggesting that only a COOH-terminal portion of PE2 is excluded from translocation across the microsomal membrane.

Amino Acid Sequence