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C Grose

Publications and source records attributed to C Grose.

At least 91 records · Page 5Linked to original sources

Assembly and processing of the disulfide-linked varicella-zoster virus glycoprotein gpII(140).

Varicella-zoster virus (VZV) specifies the synthesis of at least four families of glycoproteins, which have been designated gpI, gpII, gpIII, and gpIV. In this report we describe the assembly and processing of VZV gpII, a structural protein of an apparent Mr of 140,000, which is the homolog of gB of herpes simplex virus. For these studies, we used two anti-gpII monoclonal antibodies which exhibited both complement-independent neutralization activity and inhibition of virus-induced cell-to-cell fusion. Pulse-chase labeling experiments identified a 124,000-Mr intermediate which was chased to the mature 140,000-Mr product when analyzed in nonreducing gels; in the presence of a reducing agent, the native gp140 was cleaved into two closely migrating species (gp66 and gp68). The biosynthesis of VZV gpII was further analyzed in the presence of the following inhibitors of glycoprotein processing: tunicamycin, monensin, castanospermine, swainsonine, and deoxymannojirimycin. All intermediate and mature forms were digested with endoglycosidases H and F, neuraminidase, and O-glycanase to further define high-mannose, complex, and O-linked glycans. Finally, the addition of sulfate residues was investigated. This characterization of VZV gpII revealed the following results. (i) gp128 and gp124 were early high-mannose forms, (ii) gp126 was an intermediate form with complex N-linked oligosaccharides, (iii) gp130 was a later intermediate with both N-linked and O-linked glycans, and (iv) the mature product gp140 contained a mixture of N-linked and O-linked glycans which were both sialated and sulfated. Further investigations indicated that gpII sulfation was inhibited by tunicamycin and castanospermine but not by deoxymannojirimycin or swainsonine. We also concluded that VZV gpII displayed many biological and biochemical properties similar to those of its herpes simplex virus homolog gB.

1-Deoxynojirimycin↗

Immunity to varicella-zoster viral glycoproteins, gp I (gp 90/58) and gp III (gp 118), and to a nonglycosylated protein, p 170.

Humoral and cellular immunity against two major glycoproteins (gp) of varicella-zoster virus (VZV), gp I (gp 90/58) and gp III (gp 118), and against a nonglycosylated phosphoprotein (p 170) was demonstrated in human subjects. Primary VZV infection was accompanied by the development of IgG to gp I (mean titer 1:200), gp III (mean titer 1:132), and p 170 (mean titer 1:331). Increased IgG antibody production to each of the VZV proteins occurred during recurrent VZV infection with mean titers to gp I of 1:29512, to gp III of 1:15848, and to p 170 of 1:15848. Persistent high titers to gp III (mean titer 1:891) and to p 170 (mean titer 1:2238) were observed in 75% and 88% of VZV-immune subjects, respectively. T lymphocytes which proliferated on stimulation with gp I, gp III, and p 170 developed with primary VZV infection. VZV-immune subjects had mean transformation indices of 4.2 +/- 0.70 SE to gp I, 4.7 +/- 1 SE to gp III, and 3 +/- 0.39 SE to p 170. Among individual subjects, humoral and cellular immunity was not always detected to all three of the VZV proteins. Resolution of primary VZV infection and maintenance of VZV latency did not require a host response to each of these major viral proteins.

Antibodies, Monoclonal↗

Neutralization epitope of varicella zoster virus on native viral glycoprotein gp118 (VZV glycoprotein gpIII).

Varicella-zoster virus (VZV) specifies the formation of several glycoproteins, including a 118,000-Da mature structural product (gp118). The biologic and biochemical properties of gp118 were studied after production of murine monoclonal antibodies to both a lowpassage laboratory strain (VZV-32) and an attenuated vaccine strain (VZV-Oka). Structural analyses performed with the three glycosidases endo-beta-N-acetylglucosaminidase H (endoglycosidase H), endo-beta-N-acetylglucosaminidase F (endoglycosidase F), and endo-alpha-N-acetylgalactosaminidase demonstrated that gp118 was predominantly an N-linked complex type glycoprotein built upon a polypeptide backbone of approximately 79,000 Da. Sialic acid residues were present on the mature glycoprotein, but these terminal sugars were absent from the partially glycosylated intermediate forms recovered from monensin-treated infected cultures. Unlike another VZV-specified glycoprotein gp98, no new oligosaccharide moieties were observed on gp118 after addition of tunicamycin to VZV-infected cultures. By plaque reduction assays with a panel of monoclonal antibodies, we defined an epitope on this glycoprotein which elicited a complement-independent neutralizing antibody response of high magnitude. The epitope was highly conserved, since it was present on a laboratory VZV strain, wild type isolates, as well as the attenuated vaccine strain (VZV-Oka). Competitive blocking experiments with the same anti-gp118 monoclonal antibodies indicated that four neutralizing antibodies were directed against similar or identical epitopes whereas one nonneutralizing antibody reacted with a different antigenic site. Thus, this study demonstrates the presence of an immunodominant neutralization epitope on native viral glycoprotein gp118. Under a new consensus nomenclature, this glycoprotein will be designated VZV gpIII.

Antibodies, Monoclonal↗

Varicella zoster virus glycoprotein gpI is selectively phosphorylated by a virus-induced protein kinase.

Varicella zoster virus glycoprotein I (VZV gpI; Mr 98,000) was phosphorylated in virus-infected human cell monolayers, while two other major VZV glycoproteins (gpII and gpIII) were not similarly modified. Phosphorylation of VZV gpI was not blocked by inhibitors of glycosylation, nor were the phosphoryl groups enzymatically removed by endoglycosidases. Phosphoamino acid analysis revealed the presence of phosphoserine and phosphothreonine residues on the polypeptide backbone. The selective nature of the phosphorylation event was further demonstrated in vitro by a protein kinase (Mr 50,000), which was present in virus-infected cells but absent from uninfected cells or purified virions. The enzyme catalyzed the transfer of 32Pi from [gamma-32P]ATP to gpI but not to gpII and gpIII. Like VZV gpI, this virus-induced protein kinase was also a constituent of the plasma membrane of live VZV-infected cells.

Cell Membrane↗

Varicella-zoster virus p32/p36 complex is present in both the viral capsid and the nuclear matrix of the infected cell.

Varicella-zoster virus (VZV) directs the synthesis of numerous glycosylated and nonglycosylated infected-cell-specific proteins, many of which are later incorporated into the virion as structural components. In this study, we characterized a nonglycosylated polypeptide complex with the aid of a VZV-specific murine monoclonal antibody clone, 251D9. As detected by indirect immunofluorescence, the antibody bound mainly to antigens located within the nuclei of infected cells and did not attach to an uninfected cell substrate. The polypeptide specificity of the monoclonal antibody was determined by immunoblot analysis of electrophoretically separated infected cell extracts to react with a 32,000-molecular-weight VZV-specific protein (p32); in addition, the antibody also bound to a 36,000-molecular-weight polypeptide. The synthesis of these antigens was unaffected by inhibitors of glycosylation. Nonionic or ionic detergents were only marginally effective in solubilization of the p32-p36 complex, and relatively small amounts were eluted from nuclei by high salt concentrations (2 M NaCl). The same proteins remained associated with the nuclear matrix of VZV-infected cells. We also demonstrated that the protein complex was a major component of purified VZV nucleocapsids; p32 was especially prominent in both full and empty capsids. Immunoblot analysis of the nucleocapsid preparation revealed two additional species (p34 and p38) in the p32-p36 complex. Phosphorylation was a distinctive feature of some of the constituents. In summary, these results indicate that the p32-p36 complex represents a family of structural proteins closely associated with the assembly of VZV nucleocapsids and the encapsidation of viral DNA.

Antibodies, Monoclonal↗

New common nomenclature for glycoprotein genes of varicella-zoster virus and their glycosylated products.

The accumulation of recent data concerning the reactivity of monoclonal antibodies with particular varicella-zoster virus (VZV) glycoproteins and the mapping of several of their respective genes on the VZV genome has led to a unified nomenclature for the glycoprotein genes of VZV and their mature glycosylated products. Homologs to herpes simplex virus glycoprotein genes are noted.

Genes, Viral↗

Varicella-zoster viral glycoprotein envelopment: ultrastructural cytochemical localization.

The periodate-thiocarbohydrazide silver proteinate (PA-TCH-SP) method was used to study the envelopment process in varicella-zoster virus-infected human melanoma cells. Viral envelopment could be seen at two sites, the nuclear membrane and at virus-induced intracytoplasmic vacuoles. Virus-associated glycoconjugates were detected by the PA-TCH-SP method at the plasmalemma and on the inner membrane of the intracytoplasmic vacuoles. Virion envelopes acquired at the nuclear membrane were PA-TCH-SP negative, whereas those acquired at intracytoplasmic vacuoles were PA-TCH-SP positive. All virions found inside these vacuoles contained periodate-reactive envelopes. Release of virions into the extracellular space, where virtually all virions were PA-TCH-SP positive, appeared to be via exocytosis. Thus, the PA-TCH-SP method identifies glycoprotein incorporation at specific cytoplasmic vacuoles distinct from nuclear envelope, endoplasmic reticulum, and Golgi lamellae. These results suggest that envelopment within the cytoplasm is a stage in the assembly of the varicella-zoster virion.

Glycoproteins↗

Structural analysis of the varicella-zoster virus gp98-gp62 complex: posttranslational addition of N-linked and O-linked oligosaccharide moieties.

Varicella-zoster virus specifies the formation of several glycoproteins, including the preponderant gp98-gp62 glycoprotein complex in the outer membranes of virus-infected cells. These viral glycoproteins are recognized and precipitated by a previously described monoclonal antibody designated monoclone 3B3. When an immunoblot analysis was performed, only gp98 was reactive with monoclone 3B3 antibody; likewise, titration in the presence of increased concentrations of sodium dodecyl sulfate during antigen-antibody incubations caused selective precipitation of gp98 but not gp62. Further structural analyses of gp98 were performed by using the glycosidases endo-beta-N-acetylglucosaminidase H (endoglycosidase H) and neuraminidase and two inhibitors of glycosylation (tunicamycin and monensin). In addition to gp98, antibody 3B3 reacted with several intermediate products, including gp90, gp88, gp81, and a nonglycosylated polypeptide, p73. Since gp98 was completely resistant to digestion with endoglycosidase H, it contained only complex carbohydrate moieties; conversely, gp81 contained mainly high-mannose residues. Polypeptide p73 was immunodetected in the presence of tunicamycin and designated as a nascent recipient of N-linked sugars, whereas gp88 was considered to contain O-linked oligosaccharides because its synthesis was not affected by tunicamycin. The ionophore monensin inhibited production of mature gp98, but other intermediate forms, including gp90, were detected. Since the latter product was similar in molecular weight to the desialated form of gp98, one effect of monensin treatment of varicella-zoster virus-infected cells was to block the addition of N-acetylneuraminic acid. Monensin also blocked insertion of gp98 into the plasma membrane and, as determined by electron microscopy, inhibited envelopment of the nucleocapsid and its transport within the cytoplasm. On the basis of this study, we reached the following conclusions: the primary antibody 3B3-binding epitope is located on gp98, gp98 is a mature product of viral glycoprotein processing, gp98 contains both N-linked and O-linked oligosaccharide side chains, gp90 is the desialated penultimate form of gp98, gp88 is an O-linked intermediate of gp98, gp81 is the high-mannose intermediate of gp98, and p73 is the unglycosylated precursor of gp98.

Cells, Cultured↗

Human leukocytes kill varicella-zoster virus-infected fibroblasts in the presence of murine monoclonal antibodies to virus-specific glycoproteins.

Seven murine monoclonal antibodies reacting with major glycoproteins of varicella-zoster virus were tested for functional activity in assays for antibody-dependent cellular cytotoxicity (ADCC) and antibody-plus-complement-mediated lysis. Human peripheral blood mononuclear cells killed varicella-zoster virus-infected fibroblasts in the presence of three of four monoclonal antibodies directed against gp98/62 and a single monoclonal antibody directed against gp118. Neither of two monoclonal antibodies directed against gp66 was able to mediate ADCC. In 18-h assays, adherent effector cells were more active than nonadherent effector cells in mediating ADCC. Adherent cells treated with anti-Leu-11b and complement retained their cytotoxic activity, suggesting that monocytes are responsible for most of the adherent-cell-mediated cytotoxicity. Both immunoglobulin G1 and G2a murine monoclonal antibodies were able to participate in ADCC. Of the two immunoglobulin G2a monoclonal antibodies tested, both of which reacted with gp98/62, only one mediated lysis in the presence of complement. These results indicate that some murine monoclonal antibodies against major glycoproteins of varicella-zoster virus have functional activity in cytotoxicity assays.

Antibodies, Monoclonal↗

Varicella-zoster virus-specific gp140: a highly immunogenic and disulfide-linked structural glycoprotein.

A 140,000-dalton disulfide-linked glycoprotein (gp140) specified by varicella-zoster virus (VZV) in infected cultured cells was identified and precipitated by two murine monoclonal antibodies (VZ-151 and VZ-158). When analyzed under reducing conditions by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, gp140 was cleaved predominantly into a 66,000 lower-molecular-weight product (gp66). This protein was classified as a viral structural component, since it was observed in the polypeptide profile of metrizamide gradient-purified enveloped virions. By immunofluorescence analyses with a monoclonal antibody probe, gp140 expression was documented to be highly conserved both within cultured cells inoculated with homologous (VZV-Oka) and heterologous (VZV-32) strains and in infected human tissues from chicken pox and zoster patients. That the glycoprotein was highly immunogenic was confirmed by the presence of high-titer anti-gp140 antibody in the sera of both hyperimmunized laboratory animals and naturally infected humans. Temporally, the humoral response to gp140 following primary VZV infection preceded that against the other viral glycoproteins. These studies describe, therefore, an immunogenic, disulfide-linked viral structural glycoprotein, which must be included among the other five previously described VZV-specific fucosylated species--gp118, gp98, gp62, and gp45.

Antibody Formation↗

Molecular dissection of the humoral immune response to individual varicella-zoster viral proteins during chickenpox, quiescence, reinfection, and reactivation.

The sequence of antibody formation to molecularly defined varicella-zoster virus (VZV) proteins was examined during the course of chickenpox, quiescence, and subsequent VZV reactivation and reinfection. The first antibodies produced after primary VZV infection were to two virion envelope glycoproteins, gp66 and gp118 , and the nucleocapsid protein p155 . Within one to two months, antibodies to a greater array of viral proteins and glycoproteins were observed. Antibodies to the immunodominant viral proteins ( gp66 , gp118 , and p155 ) persisted for years after varicella and were, therefore, excellent markers of prior VZV infection. Subclinical VZV reinfection also was associated with transient rises in levels of the same polypeptide-specific antibodies as during primary disease. The immunoglobulin response to zoster appeared more rapidly than that to chickenpox or reinfection and was to the broadest complement of viral proteins, including the distinctive VZV polypeptide p32. These radioimmune-precipitation profiles could be subdivided into six different patterns characteristic of the following clinical states: acute- and convalescent-phase chickenpox, quiescence, acute- and convalescent-phase zoster, and postzoster quiescence.

Antibodies, Viral↗

Glycoprotein gp118 of varicella-zoster virus: purification by serial affinity chromatography.

Glycoprotein gp118, one of the major glycosylated proteins specified by varicella-zoster virus, is biologically of great importance since it possesses an epitope which elicits a complement-independent neutralizing antibody response. To purify this glycoprotein from a Nonidet-solubilized extract of varicella-zoster virus-infected cells, we examined its affinity to a variety of ligands, including two lectins--concanavalin A and Lens culinaris, Cibacron blue and heparin, and finally an immunoadsorbent anti-gp118 monoclonal antibody. By serial affinity chromatography on three different columns consisting of, respectively (i) Cibacron blue dye-Sepharose, (ii) L. culinaris-Sepharose, and (iii) anti-gp118 murine monoclonal antibody bound to CNBr-activated Sepharose, we isolated varicella-zoster virus-specific gp118 essentially free of contamination by any other radiolabeled viral or cellular polypeptide. The fold purification was estimated at 1,025 and the percent recovery at 13.6. On the basis of its chromatographic properties, gp118 appeared to contain mainly asparagine-linked, biantennary, complex-type, and hybrid-type oligosaccharides.

Animals↗

DNA mapping of paired varicella-zoster virus isolates from patients with shingles.

Varicella-zoster virus (VZV) was isolated from two separate sites in each of three patients with shingles (herpes zoster). The DNAs of the six VZV isolates were compared by high-resolution restriction endonuclease analysis with HindIII, KpnI, and HpaI. DNA cleavage patterns for each pair of VZV isolates were indistinguishable. These studies suggest that clinical shingles is the manifestation of a single VZV strain that becomes reactivated and causes both a viraemia and a dermatomal exanthem.

Aged↗

Zoster in children with cancer: radioimmune precipitation profiles of sera before and after illness.

Sera collected from children with cancer before and for extended periods after the onset of zoster were analyzed by radioimmune precipitation techniques. The percent recovery of both [3H]fucose- and [35S]methionine-labeled varicella-zoster virus (VZV)-specific antigens increased severalfold immediately after zoster and declined slowly during convalescence; however, within two years serum panels from two patients exhibited serologic evidence of subclinical reactivation of VZV. After electrophoretic fractionation of the immunoprecipitates, the polypeptide profile after zoster closely resembled that described for high titer xenoantisera to VZV and contained at least 16 constituents ranging in molecular weight from 32 to 174,000. In contrast, sera obtained before zoster were easily distinguished because they precipitated poorly, if at all, two major VZV glycoproteins (gp62 and gp98) and several nonglycosylated polypeptides. The emergence of zoster, therefore, was associated with the appearance of previously undetectable antibodies to VZV-specific proteins.

Adolescent↗

Common expression of varicella-zoster viral glycoprotein antigens in vitro and in chickenpox and zoster vesicles.

Human cells infected with varicella-zoster virus (VZV) produce at least three major virus-specific, immunogenic glycoproteins: gp118, gp98, and gp62. Since glycoproteins gp98 and gp62 were found to be prominent constituents of the infected cell membrane, a murine monoclonal antibody (clone 3B3) that reacted avidly with this glycoprotein complex was selected as a probe for detection of VZV replication in laboratory and clinical settings. Cultured cells of human, simian, and caviid origin, when infected with wild-type isolates as well as laboratory and vaccine strains of VZV all expressed these viral glycoproteins. The monoclonal antibody immunostained the basal and malpighian epithelial layers of a zoster vesicle biopsy specimen and also reacted with all specimens of vesicular cells obtained from epidemiologically unrelated patients with chickenpox and zoster. Thus, these studies demonstrate that the VZV-specific glycoprotein complex gp98/gp62 is highly conserved, abundantly expressed, and easily detected with a monoclonal antibody probe.

Animals↗

Monoclonal antibodies against three major glycoproteins of varicella-zoster virus.

Varicella-zoster virus (VZV) codes for three prominent glycoproteins--gp62, gp98, and gp118--in infected cell cultures. To characterize individually these known immunogens, we first inoculated BALB/c mice with crude VZV extracts, produced hybridoma cultures by Köhler-Milstein cell-fusion technology, and screened culture supernatants by indirect immunofluorescence for reactivity directed against unfixed VZV-infected cells (FAMA assay). Supernatants from five independently derived and subcloned hybridomas with a high VZV-FAMA titer but no reactivity against either uninfected or herpes simplex virus-infected cells were further analyzed by immunoprecipitation of [3H]fucose-labeled and detergent-solubilized VZV antigen preparations. Fractionation of the precipitates by sodium dodecyl sulfate-polyacrylamide gel electrophoresis demonstrated that four monoclonal antibodies reacted with both gp62 and gp98, and one precipitated only gp118. The profiles were unchanged whether performed under reducing or nonreducing conditions. When assayed for neutralizing activity, the secretory product of the single anti-gp118 hybridoma, but not the supernatants from the four anti-gp62/gp98 clones, inhibited VZV plaque formation by greater than 80%. Thus, at least one of the glycosylated antigens detected by the FAMA assay is a determinant which elicits neutralizing activity.

Animals↗