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E Paoletti

Publications and source records attributed to E Paoletti.

At least 55 records · Page 3Linked to original sources

Attenuated vaccinia virus-circumsporozoite protein recombinants confer protection against rodent malaria.

NYVAC-based vaccinia virus recombinants expressing the circumsporozoite protein (CSP) were evaluated in the Plasmodium berghei rodent malaria model system. Immunization of mice with a NYVAC-based CSP recombinant elicited a high level of protection (60 to 100%). Protection did not correlate with CS repeat-specific antibody responses and was abrogated by in vivo CD8+ T-cell depletion. Protection was not enhanced by modification of the subcellular localization of CSP. These results suggest the potential of poxvirus-based vectors for the development of vaccine candidates for human malaria.

Animals↗

NYVAC-Pf7: a poxvirus-vectored, multiantigen, multistage vaccine candidate for Plasmodium falciparum malaria.

The highly attenuated NYVAC vaccinia virus strain has been utilized to develop a multiantigen, multistage vaccine candidate for malaria, a disease that remains a serious global health problem and for which no highly effective vaccine exists. Genes encoding seven Plasmodium falciparum antigens derived from the sporozoite (circumsporozoite protein and sporozoite surface protein 2), liver (liver stage antigen 1), blood (merozoite surface protein 1, serine repeat antigen, and apical membrane antigen 1), and sexual (25-kDa sexual-stage antigen) stages of the parasite life cycle were inserted into a single NYVAC genome to generate NYVAC-Pf7. Each of the seven antigens was expressed in NYVAC-Pf7-infected culture cells, and the genotypic and phenotypic stability of the recombinant virus was demonstrated. When inoculated into rhesus monkeys, NYVAC-Pf7 was safe and well tolerated. Antibodies that recognize sporozoites, liver, blood, and sexual stages of P. falciparum were elicited. Specific antibody responses against four of the P.falciparum antigens (circumsporozoite protein, sporozoite surface protein 2, merozoite surface protein 1, and 25-kDa sexual-stage antigen) were characterized. The results demonstrate that NYVAC-Pf7 is an appropriate candidate vaccine for further evaluation in human clinical trials.

Amino Acid Sequence↗

Distinct patterns of IFN sensitivity observed in cells infected with vaccinia K3L- and E3L- mutant viruses.

Recent results have implicated a role for both the VV K3L- and E3L-encoded gene products in conferring VV with an IFN-resistant phenotype (Beattie et al., Virology 183, 419-422, 1991; Beattie et al., J. Virol. 69, 499-505, 1995). As a means of further establishing the mechanisms by which these functions mediate this process in VV-infected cells, we have further assessed the IFN phenotype in K3L- (vP872) and E3L- (vP1080) virus-infected cells. Biochemical and molecular biological analyses were performed comparing the effects of IFN on wild-type as well as K3L- and E3L- virus-infected cells. Expression analyses of the K3L and E3L gene products revealed that both are evidenced in virus-infected cells as early as 0.5 hr postinfection. E3L expression, however, appears more prolonged, in that it was detectable between 3 to 4 hr postinfection while K3L was undetectable after 3 hr postinfection. Despite having similar expression profiles at early times postinfection, a pronounced sensitivity of protein synthesis to IFN was observed by 30 min postinfection in VV K3L- virus-infected cells, whereas IFN sensitivity was not observed in VV E3L(-)-infected cells until 2 hr postinfection. Subsequent analyses of the IFN-induced antiviral pathways in VV-infected cells demonstrated that the K3L gene product does not contribute to the previously identified specific kinase inhibitory factor (SKIF) activity but does reduce the level of phosphorylated eIF-2 alpha in VV-infected cells. Interestingly, the IFN-induced 2',5'-oligoadenylate synthetase-mediated antiviral pathway was active in VV K3L(-)-infected cells and not in wild-type virus-infected cells. Collectively these results suggest that the K3L(-)- and E3L(-)-encoded products abrogate the antiviral effect of IFN at distinct levels.

2',5'-Oligoadenylate Synthetase↗

Poxvirus-based vaccine candidates for cancer, AIDS, and other infectious diseases.

Over the past 12 years, the poxvirus vector technology has provided scientists with valuable reagents to achieve high-level expression of proteins, to address questions of structure-function relationship of specific polypeptides, to investigate the immunobiology of specific pathogens, and to develop recombinant vaccine candidates. It is this last role that has drawn enthusiasm from the medical community because of the potential this technology has to provide novel approaches for addressing urgent needs in human and veterinary medicine. From one perspective, the safety issues surrounding the use of vaccinia-based vaccine candidates have been addressed with the development of the NYVAC and ALVAC vectors. Evaluation of these novel poxvirus vectors are in progress to determine their potential impact on cancer and infectious disease.

Acquired Immunodeficiency Syndrome↗

Poxvirus-based vectors as vaccine candidates.

The safety issues surrounding the use of vaccinia-based vaccine candidates have been significantly addressed with the development of the NYVAC and ALVAC vectors. These vectors can be engineered to express multiple genes from the same pathogen or multiple genes from multiple pathogens. The use of these vectors to develop needed vaccines for human and veterinary medicine remains the focus of studies that are currently in progress.

Animals↗

Biological and immunogenic properties of a canarypox-rabies recombinant, ALVAC-RG (vCP65) in non-avian species.

A canarypox-based (ALVAC) recombinant expressing the rabies G glycoprotein has been utilized to assess in vitro and in vivo biological properties of the canarypox virus vector system. In vitro studies have shown that no replication of the virus can be detected on six human-derived cell lines, nor can the virus be readily adapted to replicate on non-avian cells. Expression of the rabies G can be detected on all cell lines analyzed in the absence of productive viral replication. Analysis of viral-specific DNA accumulation indicated that the block in the replication cycle in the human cell lines analyzed occurred prior to DNA replication. The exact nature of the block, however, remains unknown. The concept of using a non-replicating immunization vehicle has been demonstrated through extensive in vivo studies in a range of species including non-human primates and humans. The results of such in vivo studies have exemplified the safety and immunogenicity of the ALVAC vaccine vector.

Animals↗

Preclinical evaluation of an ALVAC (canarypox)--human cytomegalovirus glycoprotein B vaccine candidate.

Successful vaccination against the human cytomegalovirus (HCMV) requires induction of both neutralizing antibody and cytotoxic T lymphocyte (CTL) responses. The HCMV glycoprotein B (gB, UL55) would be one of the most important immunogens to induce neutralizing antibodies. We tested the immunogenicity of an ALVAC (canarypox)-HCMV-gB (ALVAC-gB) recombinant in mice and guinea pigs in order to provide preclinical data for a phase I clinical trial of a HCMV vaccine candidate. ALVAC is an attenuated vaccine strain of canarypox virus which replicates productively in avian species but abortively in mammalian cells. The ALVAC-gB recombinant inoculated subcutaneously in mice and intramuscularly in guinea pigs induced HCMV-specific neutralizing antibodies and gB-specific CTL responses. Ultraviolet irradiation of the ALVAC-gB recombinant before immunization diminished CTL responses, indicating that intracellular expression and processing of gB-protein were necessary for CTL induction. Prior immunity to vaccinia virus did not decrease immunogenicity of the ALVAC-gB recombinant in mice. Thus, despite its host range restriction, ALVAC-gB is potentially capable of inducing both humoral and cell-mediated immune responses to HCMV in both vaccinia-immune and non-immune individuals.

Animals↗

HIV-1 recombinant poxvirus vaccine induces cross-protection against HIV-2 challenge in rhesus macaques.

Rhesus macaques were immunized with attenuated vaccinia or canarypox human immunodeficiency virus type 1 (HIV-1) recombinants and boosted with HIV-1 protein subunits formulated in alum. Following challenge with HIV-2SBL6669, three out of eight immunized macaques resisted infection for six months and another exhibited significantly delayed infection, whereas all three naive controls became infected. Immunizations elicited both humoral and cellular immune responses; however, no clear correlates of protection were discerned. Although more extensive studies are now called for, this first demonstration of cross-protection between HIV-1 and -2 suggests that viral variability may not be an insurmountable problem in the design of a global AIDS vaccine.

AIDS Vaccines↗

Highly attenuated HTLV type Ienv poxvirus vaccines induce protection against a cell-associated HTLV type I challenge in rabbits.

The entire envelope protein of the human T cell leukemia/lymphoma virus type I (HTLV-I)1711, obtained from the DNA of a West African healthy HTLV-I-infected patient, was expressed in the highly attenuated poxvirus vaccine vectors ALVAC and NYVAC. These live recombinant vaccine candidates were used to immunize New Zealand White rabbits. Immunization regimens included inoculation of the poxvirus recombinant alone as well as prime/boost protocols using gp63 HTLV-I envelope precursor protein in Alum as the subunit boost. All animals were exposed to an HTLV-I cell-associated challenge (5 x 10(4) cells) from a primary culture of the HTLV-IBOU isolate. The results indicated that two inoculations of the ALVAC-based HTLV-Ienv vaccine candidate protected animals against viral challenge 5 months following the last immunization. However, a combination protocol with ALVAC-env and two additional boosts of gp63 surprisingly failed to confer protection, suggesting that administration of the subunit preparation might be deleterious. Further, in the case of the NYVAC HTLV-Ienv recombinant, protection was afforded as early as 2 months following the first immunization. Last, all the protected animals in the NYVAC and ALVAC trials were challenged 5 months following the initial challenge exposure with 5 ml of blood from an HTLV-IBOU-infected animal, and subsequently became infected. Protection conferred by the attenuated HTLV-Ienv recombinant poxvirus vaccine in the rabbit model might be instrumental for optimizing the immunogenicity of poxvirus-based vaccine candidates against human immunodeficiency virus (HIV), particularly because of the need to enhance protection against cell-to-cell transmission.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Induction of human immunodeficiency virus type 1 (HIV-1)-specific cytolytic T lymphocyte responses in seronegative adults by a nonreplicating, host-range-restricted canarypox vector (ALVAC) carrying the HIV-1MN env gene.

CD8+ cytolytic T lymphocytes (CTL) are likely to be an important component of effective vaccines against human immunodeficiency virus type 1 (HIV-1). CTL can be induced most effectively with live virus vectors. However, because of concerns about the safety of such vectors, a nonreplicating canarypox vector (ALVAC) capable of expressing foreign genes in mammalian cells has been developed. This study evaluated the capacity of an ALVAC vector expressing the HIV-1MN envelope (env) glycoprotein to induce HIV-1-specific CTL in seronegative volunteers. Protocols were designed to determine whether immunization with ALVAC alone or in combination with subunit boosting could induce CTL in vaccinia-immune and -naive volunteers. A simple method for antigen-specific in vitro stimulation was used to detect CTL responses in HIV-1-seronegative vaccine recipients. The results indicate that low doses of a nonreplicating virus vector alone can elicit both CD4+ and CD8+ HIV-1-specific CTL in a subset of seronegative volunteers.

AIDS Vaccines↗

Reversal of the interferon-sensitive phenotype of a vaccinia virus lacking E3L by expression of the reovirus S4 gene.

The vaccinia virus (VV) E3L gene, which encodes a potent inhibitor of the interferon (IFN)-induced, double-stranded RNA (dsRNA)-dependent protein kinase, PKR, is thought to be involved in the IFN-resistant phenotype of VV. The E3L gene products, p25 and p20, act as inhibitors of PKR, presumably by binding and sequestering activator dsRNA from the kinase. In this study we demonstrate that VV with the E3L gene specifically deleted (vP1080) was sensitive to the antiviral effects of IFN and debilitated in its ability to rescue vesicular stomatitis virus from the antiviral effects of IFN. Infection of L929 cells with E3L-minus virus led to rRNA degradation typical of activation of the 2'-5'-oligoadenylate synthetase/RNase L system, and extracts of infected cells lacked the PKR-inhibitory activity characteristic of wild-type VV. The reovirus S4 gene, which encodes a dsRNA-binding protein (sigma 3) that can also inhibit PKR activation by binding and sequestering activator dsRNA, was inserted into vP1080. The resultant virus (vP1112) was partially resistant to the antiviral effects of IFN in comparison with vP1080. Further studies demonstrated that transient expression of the reovirus sigma 3 protein rescued E3L-minus VV replication in HeLa cells. In these studies, rescue by sigma 3 mutants correlated with their ability to bind dsRNA. Finally, vP112 was also able to rescue the replication of the IFN-sensitive virus vesicular stomatitis virus in a manner similar to that of wild-type VV. Together, these results suggest that the reovirus S4 gene can replace the VV E3L gene with respect to interference with the IFN-induced antiviral activity.

Animals↗

Highly attenuated poxvirus vectors: NYVAC, ALVAC and TROVAC.

Three highly attenuated and efficacious poxvirus-based vectors, NYVAC, ALVAC and TROVAC, are available for targeted applications as recombinant vaccines in both human and veterinary medicine. The attenuated phenotype of the three vectors is consistent with safe use for vaccination purposes, for the vaccinee, for unvaccinated contacts, and for introduction into the environment. The precise deletion of virulence and host range genes in the NYVAC vector precludes reversion to the virulent phenotype by back mutation. Dissemination of recombinant vaccines based on the NYVAC, ALVAC and TROVAC vectors is highly diminished, because of the genetic engineering in NYVAC and the natural attenuated phenotype of ALVAC and TROVAC. Studies have demonstrated that these recombinant vectors are genetically and phenotypically stable after serial passage in vitro as well as in vivo. NYVAC, ALVAC and TROVAC vectors are the only three poxvirus-based vectors that are classified as BSL1 agents.

Animals↗

The safety and use of canarypox vectored vaccines.

ALVAC recombinants have been administered to humans and animals by parenteral and oral routes without giving signs of replication, systemic dissemination or severe reaction. In principle, it should be impossible for canarypox recombinants to disseminate in the environment as they would not be synthesised in mammalian cells as complete virus. Canarypox vectors have been safe for humans, in whom there has been no evidence of replication, but more work needs to be done to prove absence of replication. Recombinants are immunogenic by the intramuscular and subcutaneous routes. They are also immunogenic when given orally, but the dose required is still under study. Canarypox recombinants effectively prime the immune system for induction of antibodies and CD8 cell-mediated cytotoxicity by protein antigens. Antibody responses are not influenced by prior inoculation of canarypox, of subunit vaccine corresponding to the gene insert, or of vaccinia. Canarypox virus is attenuated for canaries, in which species it is already widely used. In principle, it is non-infectious for humans or other mammals. It may be infectious for other birds.

AIDS Vaccines↗

TAR RNA-binding protein is an inhibitor of the interferon-induced protein kinase PKR.

A cDNA encoding a double-stranded-RNA (dsRNA)-binding protein was isolated by screening a HeLa cell cDNA expression library for proteins that bind the HIV-1 Rev-responsive-element RNA. The cDNA encoded a protein that was identical to TRBP, the previously reported cellular protein that binds the transactivation response element (TAR) RNA of human immunodeficiency virus type 1. TRBP inhibited phosphorylation of the interferon-induced ribosome-associated protein kinase PKR and of the eukaryotic translation initiation factor eIF-2 alpha in a transient-expression system in which the translation of a reporter gene was inhibited by the localized activation of PKR. TRBP expression in HeLa cells complemented the growth and protein-synthesis defect of a vaccinia virus mutant lacking the expression of the dsRNA-binding protein E3L. These results implicate TRBP as a cellular regulatory protein that binds RNAs containing specific secondary structure(s) to mediate the inhibition of PKR activation and stimulate translation in a localized manner.

Animals↗

Recombinant vaccinia viruses co-expressing dengue-1 glycoproteins prM and E induce neutralizing antibodies in mice.

Four recombinant vaccinia viruses expressing different portions of the dengue type 1 virus (DEN-1) genome (C-prM-E-NS1-NS2A-NS2B; prM-E; prM-E-NS1-NS2A-NS2B; or NS1-NS2A) were constructed in order to establish the most immunogenic configuration of DEN-1 proteins. Both recombinants producing prM and E in the absence of C induced the synthesis of extracellular forms of E in vitro. Mice inoculated with these two recombinants produced DEN-1 neutralizing (NEUT) and haemagglutination inhibiting (HAI) antibodies. The other two recombinant vaccinia viruses, which did not induce the production of extracellular forms of E, did not induce E-specific immune responses. These results support our previous studies on the design of flavivirus-vaccinia vaccine candidates by showing the importance of co-expressing prM and E in order to induce the synthesis of extracellular E and to elicit NEUT and HAI antibodies.

Animals↗