The buccal mucosa, a prototype of pluristratified mucosal epithelia, contains a network of directly accessible class II+ epithelial dendritic cells (DC), similar to skin Langerhans cells. We showed that a single buccal immunization with measles virus nucleoprotein (NP), by either topical application onto or intradermal injection in the buccal mucosa, induced in vivo priming of protective class I-restricted specific CD8+ CTL. Both routes of immunization with NP induced a rapid recruitment of DC into the mucosa, which peaked at 2 h and decreased by 24 h. Treatment of mice with Flt3 ligand resulted in an increased number of DC in the buccal mucosa and enhanced the frequency of IFN-γ-producing NP-specific effectors and the NP-specific CTL response generated after buccal immunization with NP. Finally, NP-pulsed bone marrow-derived DC induced NP-specific IFN-γ-producing cells upon adoptive transfer to naive mice. These data demonstrate that a viral protein delivered to DC of the buccal mucosa induces in vivo priming of protective anti-viral CD8+ CTL.
The buccal mucosa, a prototype of pluristratified mucosal epithelia, contains a network of directly accessible class II 1 epithelial dendritic cells (DC), similar to skin Langerhans cells. We showed that a single buccal immunization with measles virus nucleoprotein (NP), by either topical application onto or intradermal injection in the buccal mucosa, induced in vivo priming of protective class I-restricted specific CD8 1 CTL. Both routes of immunization with NP induced a rapid recruitment of DC into the mucosa, which peaked at 2 h and decreased by 24 h. Treatment of mice with Flt3 ligand resulted in an increased number of DC in the buccal mucosa and enhanced the frequency of IFN- g -producing NP-specific effectors and the NP-specific CTL response generated after buccal immunization with NP. Finally, NP-pulsed bone marrow-derived DC induced NP-specific IFN- g -producing cells upon adoptive transfer to naive mice. These data demonstrate that a viral protein delivered to DC of the buccal mucosa induces in vivo priming of protective anti-viral CD8 1 CTL. The Journal of Immunology, 2001, 167: 384–391.
Calmodulin, an EF-hand protein, inhibited the fusion between CD4(+) human cells and cells stably expressing HIV-1 envelope proteins. Fusion was also inhibited when HIV-1, HIV-2 or SIV envelope glycoproteins were expressed by vaccinia virus (VV) recombinants, but calmodulin did not inhibit syncytia formation induced by measles virus glycoproteins. Calmodulin also inhibited fusion induced by vPE17, a VV-recombinant expressing a truncated form of HIV-1gp160 which lacks the two known calmodulin-binding sites located in the cytoplasmic domain of gp41. The inhibitory activity was specific to calmodulin among the EF-hand proteins. These observations may be important in understanding the mechanism of retroviral envelope glycoprotein-mediated cell fusion. Several possible mechanisms of action are discussed. (C) 1997 Elsevier Science B.V.
HIV-1 gp120 and truncated forms were expressed in HeLa T4 cells by vaccinia recombinant viruses. The truncated gp120 molecules consisted of N-terminal overlapping envelope proteins of 204, 287 and 393 amino acids respectively. Immunoprecipitation with specific monoclonal antibodies and SDS-PAGE analyses of HIV-1 gp120 revealed bands corresponding to low amounts of secreted and cell-bound stable dimers. In contrast, the truncated forms of gp120 expressed larger amounts of SDS-stable putative dimers and the amounts observed were inversely proportional to their size. The shortest gp120 mutant (204 aa) was found to be secreted almost exclusively as a dimer. The processing of gp120 and its truncated forms was further investigated in the presence of inhibitors of N-glycosylation. Monomers and dimers migrated on gels with the same relative changes, confirming that the protein with the higher molecular weight is a multimer of the smaller one. The putative dimeric form of the truncated gp120s could be stabilized by chemical cross-linking. Finally, the possible existence of an association domain in the N-terminal 204 amino acids (aa) of gp120 is discussed.
The immune response to a vaccinia virus recombinant expressing the measles virus haemagglutinin (VV-HA) was compared after parenteral or mucosal immunizations in mice. Parenteral immunizations with 10(6) p.f.u. VV-HA induced HA-specific antibody-producing cells (IgG>IgA) and HA-specific class I-restricted cytotoxic T lymphocytes (CTL) in the spleen. In contrast, intranasal administrations of 10(6) p.f.u. of VV-HA induced HA-specific spot-forming cells in the spleen (IgG>IgA) and the lungs (IgA>IgG), and HA-specific CTL in the spleen. Co-immunization by the nasal route with VV-HA and cholera toxin enhanced HA-specific immune responses. Oral immunizations with 10(8) p.f.u. of VV-HA generated low numbers of HA-specific IgA-producing cells in the lamina propria of the gut, and a weak HA-specific CTL activity in the spleen and mesenteric lymph nodes. Oral co-immunization with VV-HA and cholera toxin greatly enhanced the level of HA-specific spot-forming cells in the lamina propria (IgA>IgG). Interestingly, intrajejunal immunizations with 10(8) p.f.u. VV-HA alone induced high levels of anti-HA IgG-producing cells in the spleen and anti-HA IgA-secreting cells in the lamina propria of the gut. These data show that (i) VV-HA by the nasal route is immunogenic and generates a measles-specific mucosal immune response in the lung, which represents the primary site of replication of measles virus and that (ii) VV-HA can also induce measles-specific immunity in the intestine provided that it is protected from degradation in the gastrointestinal tract, or that cholera toxin is used as an adjuvant.
The measles virus (MV) haemagglutinin (HA) is a class 2 glycoprotein by means of which the virus particle attaches to the host cell receptor. We have previously expressed this glycoprotein as a vaccinia recombinant virus and have shown that the HA glycoprotein synthesized is indistinguishable from that coded by MV. In the present study, we report that in RK13 cells a soluble form (sHA) of the HA is secreted into the medium. We show by SDS-PAGE and sucrose density gradient centrifugation that the sHA is a dimer and is smaller than the cell-associated form. Using a variety of inhibitors the production of sHA was shown to be a late event, probably occurring at the membrane; only fully glycosylated molecules were found in sHA. Finally, we demonstrate that sHA retains its antigenicity with conformation-dependent MAbs and its receptor recognition function. We conclude that sHA is a valuable tool for use in studies of the structure and function of the MV HA glycoprotein.
We have evaluated the effect of inhibitors of N-glycosylation on syncytia formation in HeLa cell infected by a recombinant vaccinia virus expressing the measles virus hemagglutinin (HA) and fusion (F) glycoproteins (VV-HA/F). Inhibitors which block glucose trimming of oligosaccharides side chains of glycoproteins (glucosidase inhibitors) prevented syncytium formation. On the other hand, inhibitors which block trimming of mannose residues (mannosidase inhibitors) did not prevent syncytium formation. The HA and F synthesized in the presence of either glucosidase or mannosidase inhibitors oligomerized and were transported to the cell surface. Concanavalin A, a mannose-specific lectin, inhibited syncytium formation. The inhibitors did not block the cleavage of the F protein, but in fact enhanced it. These studies demonstrate the importance of protein N-glycosylation in the process of membrane fusion and suggest that trimming of glucose residues and the presence of terminal mannose residues are required for VV-HA/F syncytium induction.
A secreted form of human immunodeficiency virus type 1 (HIV-1) envelope glycoprotein (gp160s), expressed in HeLa cells from a vaccinia virus recombinant was analysed by velocity-gradient centrifugation and chemical cross-linking. We showed that gp160s existed predominantly as a dimer, but higher forms corresponding to trimers and tetramers were also found. Soluble CD4 (sCD4) and native CD4 expressed by recombinant vaccinia viruses were analysed by sucrose-gradient sedimentation alone or after complexing with gp160s. The sCD4 sedimented in sucrose gradients as a monomer, whereas after solubilization the native CD4 was in a dimeric state. Both forms of CD4 were able to form complexes when incubated with gp160s. In the case of the sCD4, the M(r) corresponded to a (sCD4)2-(gp160s)2 complex, whereas with CD4 the complexes were of a greater order of magnitude. HIV gp120 was secreted into the medium in a monomeric state. With sCD4 it gave a one-to-one complex, whereas with the native CD4 high M(r) complexes were formed. The importance of the oligomeric state of the virus- and cell-receptor proteins are discussed regarding their avidities.
Balb/c mice (H-2(d)) immunized with a vaccinia virus recombinant expressing the measles virus hemagglutinin (MV HA) induced a strong CD8(+) cytotoxic T lymphocyte (CTL) response which was Ld-restricted. With reference to the predictive motif for Ld-restricted epitopes, a number of nonameric peptides derived from the primary sequence of the MV HA were tested for their ability to be presented to the CTLs by P815 cells. Two peptides corresponding to amino acids 343-351 and 544-552 of the HA primary sequence sensitized target cells for lysis by the HA-specific CTLs. (C) 1994 Academic Press, Inc.
To advance our understanding of the immunobiology of measles virus (MV) infections, we have investigated the possibility of establishing cell lines constitutively expressing the individual MV antigens. In contrast to previously published studies, we show that it is possible to establish cell lines expressing high levels of fusion (F), nucleoprotein (NP) and matrix (M) MV proteins. Once cloned, the cell lines were stable with high levels of expression for more than six months. The size and cell distribution of the NP and F proteins were similar to those observed in MV- or vaccinia-MV recombinant-infected cells. In contrast, the distribution of the M protein, although being similar to that of MV-infected cells, differed from that of Vaccinia-M recombinant virus-infected cells. Preliminary results suggest that these cell lines will be useful tools for studying the contribution of individual MV antigens to the cell-mediated immune response to this virus.
The biological role of a leucine zipper motif present in the measles virus fusion (F) protein has been investigated. This motif is present in all paramyxovirus F proteins, all coronavirus spike proteins and many if not all retrovirus envelope proteins. By analogy to its role in certain transcription factors, it has been suggested that the motif may be responsible for the oligomerization of these viral membrane proteins. In this study, one, two or four heptadic leucines in the motif were substituted using site-directed mutagenesis. We found that fusion is prevented when all four heptadic leucines present in the motif are mutated whereas cellular transport and the oligomeric state of the F protein are unaffected.
A recombinant Fowlpox virus engineered to encode the measles virus fusion protein was shown to protect mice against a challenge measles infection. A vaccine dose of about 106 p.f.u. was needed to protect nearly 100% of the animals. Mice failed to develop a significant level of antibodies directed against measles virus suggesting that other components of the immune system may be involved.
We found that nontoxic doses of two inhibitors of cholesterol synthesis, namely W-7 and cerulenin, delayed syncytia formation in vero cells infected with measles virus. To correlate syncytia formation and lipidic membrane changes induced by these drugs, we labelled cell lipids with [14C]acetate. Measles virus infection increased the incorporation of radiolabel into fatty acids, triacylglycerol, cholesterol ester, and decreased its incorporation into cholesterol and 1,2-diacylglycerol. The ratios phosphatidylcholine/sphingomyelin and free cholesterol/lanosterol-dihydrolanosterol also decreased during the infection. W-7 and cerulenin greatly altered lipid metabolism. Both decreased the phosphatidylcholine to sphingomyelin and the cholesterol to lanosterol-dihydrolanosterol ratios. Z-D-Phe-L-Phe-L-Gly, a tripeptide which corresponds to the N-terminal sequence of the viral fusion protein (responsible for syncytia formation) and which inhibits virus-induced cell fusion without affecting virus synthesis also perturbed cholesterol metabolism. The tripeptide reversed the phosphatidylcholine to sphingomyelin ratio in infected cells. At non-toxic doses, W-7 inhibited the synthesis of infectious virus. Cerulenin which inhibited strongly the lipid synthesis did not. Finally, the well characterized inhibitors of cholesterol synthesis, mevinolin, ketoconazole and miconazole were shown to inhibit the syncytia formation. We conclude that the inhibition of syncytia by W-7 and cerulenin is associated with their capacity to alter the cholesterol metabolism, whereas the antiviral effect of W-7 does not seem related to this capacity.
To study the contribution of the measles virus fusion (F) protein in the immune response, anti-F monoclonal antibodies were prepared by using a vaccinia-measles virus F recombinant. In contrast to previously described anti-F monoclonal antibodies, these antibodies not only neutralized virus infectivity and inhibited fusion but also passively protected mice. Since these monoclonal antibodies recognize a configurational epitope, presentation of the antigen during infection may play an important role in the immune response. These factors are discussed in relation to vaccination.
Three distinct antigenic determinants on the nucleoprotein (NP) of measles virus were localized. These epitopes were defined by three monoclonal antibodies, one of which recognized all measles virus field strains examined, whereas the other two were variable. A measles virus NP cDNA subclone representing 502 of the 525 amino acids was cloned into a bacterial expression vector plasmid (pRIT) and expressed as a Protein A-NP fusion protein in Escherichia coli. The expressed protein reacted with all three monoclonal antibodies. A series of NP gene deletion was constructed in order to locate the antigenic sites. The antigenic site identified on all measles virus strains studied, which was designated site I, was located between amino acids 122 and 150. The two variable epitopes were located at the C terminus of the protein (site II at 457 to 476; site III at 519 to 525). The structural and biological implications of these observations are discussed.
Vaccinia virus recombinants encoding the hemagglutinin or fusion protein of measles virus have been constructed. Infection of cell cultures with the recombinants led to the synthesis of authentic measles proteins as judged by their electrophoretic mobility, recognition by antibodies, glycosylation, proteolytic cleavage, and presentation on the cell surface. Mice vaccinated with a single dose of the recombinant encoding the hemagglutinin protein developed antibodies capable of both inhibiting hemagglutination activity and neutralizing measles virus, whereas animals vaccinated with the recombinant encoding the fusion protein developed measles neutralizing antibodies. Mice vaccinated with either of the recombinants resisted a normally lethal intracerebral inoculation of a cell-associated measles virus subacute sclerosing panencephalitis strain.
We have examined the sterol composition and metabolism of promyelocytic leukaemia cell lines (HL-60) after treatment with 12-O-tetradecanoylphorbol 13-acetate (TPA). A variant cell line (Blast II cells) which is resistant to TPA was used as control. Analysis of the sterols of TPA-sensitive cells radiolabelled with [3H]leucine, [14C]acetate or [14C]pyruvate showed a high incorporation into cholesterol and a low incorporation in lanosterol + dihydrolanosterol. The inverse relationship was observed in TPA-resistant cells. Experiments with other cellular variants representing TPA-sensitive and TPA-resistant classes gave similar results. Analysis of the cellular sterol composition by gas chromatography confirmed that TPA-resistant cells are particularly rich in lanosterol/dihydrolanosterol. TPA treatment enhanced the incorporation of [14C]pyruvate into the sterol fraction of both cell types. This was accompanied by an alteration of incorporation into several lipids, particularly phospholipids. Pulse-chase studies with [14C]acetate revealed that TPA induced the release of radioactive lipids into the medium from HL-60 and Blast II cells. However this treatment released phospholipids from the TPA-sensitive cells and sterols and fatty acids from the TPA-resistant cells. We conclude that the sterol composition can regulate specific biochemical processes in the membrane and can be considered as a factor that plays a role in the responsiveness of HL-60 cells to TPA.
We have studied protein acylation using [3H]myristate in the two leukemia cell lines HL‐60 and HL‐60 Blast II. The latter is a variant which does not differentiate after treatment with 12‐O‐tetradecanoyl phorbol 13‐acetate (TPA). The acylation profiles of the two cell lines as examined by SDS‐PAGE differed. TPA induced the myristylation of an ∼ 82 kDa protein in the sensitive cells, but not in the resistant cells. Myristic acid was shown to be covalently linked to these proteins. Analysis of the cell lipids labelled with [3H]myristate showed that in contrast to observations with the proteins, the changes induced by TPA were observed in both TPA‐sensitive and TPA‐resistant cells. We conclude that the induction of myristylation may be an important step in the mechanism of differentiation.