939 resultados para HIV Envelope Protein gp120
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White spot syndrome virus (WSSV) is a major pathogen in shrimp aquaculture. VP28 is one of the most important envelope proteins of WSSV. In this study, a recombinant antibody library, as single-chain fragment variable (scFv) format, displayed on phage was constructed using mRNA from spleen cells of mice immunized with-full-length VP28 expressed in Escherichia coli. After several rounds of panning, six scFv antibodies specifically binding to the epitopes in the N-terminal, middle, and C-terminal regions of VP28, respectively, were isolated from the library. Using these scFv antibodies as tools, the epitopes in VP28 were located on the envelope of the virion by immuno-electron Microscopy, Neutralization assay with these antibodies in vitro suggested that these epitopes may not be the attachment site of WSSV to host cell receptor. This study provides a new way to investigate the structure and function of the envelope proteins of WSSV. (c) 2008 Published by Elsevier Inc.
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目的构建HIV-1C亚型gp120负载人树突状细胞(dentriti ccell,DC)疫苗,并对其体外功能进行初步检测。方法利用Amaxa细胞核转染技术将pcDNA3.1-gp120质粒转染至人成熟DC,以Western blot检测gp120的表达。通过流式细胞仪检测DC表面共刺激分子的变化、混合淋巴细胞反应、CD8+T细胞表面活化分子CD25的表达及其分泌IFN-γ的变化。结果通过Western blot检测,gp120在DC中得到了正确表达。经流式细胞仪检测,DC表面分子CD80表达率由刺激前的33.34%上升至43.20%,CD86表达率由刺激前的60.08%上升至90.34%;负载gp120DC刺激淋巴细胞增殖率为86.72%;CD8+T细胞表面分子CD25表达率由刺激前的5.27%上升至74.21%,IFN-γ的表达率达37%。结论负载了HIV-1gp120的人树突状细胞能够显著刺激淋巴细胞的增殖、增强CD8+T细胞表面活化分子CD25表达以及促进CD8+T细胞分泌IFN-γ,为下一步DC治疗性疫苗的体内研究奠定基础。
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获得性免疫缺陷综合征(AIDS)是一种由人类免疫缺陷病毒(HIV)引起的,以全身免疫系统受到严重损害为特征的传染性疾病。从目前HIV-1的流行趋势来看,HIV-1 C亚型已经成为全球最主要的流行株之一,因此,针对HIV-1 C亚型的疫苗设计颇为重要。gp120作为HIV-1的包膜糖蛋白,能够诱导广泛的中和抗体反应,中和进入机体的病毒粒子,阻止病毒早期感染,所以本实验选取HIV-1 C亚型密码子优化的gp120作为免疫原进行研究。目前的疫苗研究中,腺病毒载体是较理想的病毒载体之一,具有安全性好、外源基因容纳量大、感染效率高、操作简便等优点。我们以复制缺陷型腺病毒为载体,构建了表达HIV-1 C亚型密码子优化的gp120的重组腺病毒vAd-gp120,经Western Blot方法检测到了gp120蛋白的表达。树突状细胞(DC)是已知最强的抗原呈递细胞(APC),也是目前发现的唯一能够刺激初始型T细胞增殖的细胞。经抗原致敏的DC可通过MHC-Ⅰ、MHC-Ⅱ途径递呈抗原,并激活T细胞,从而激发体内的体液免疫和特异性细胞免疫反应。我们利用Amaxa系统将HIV-1 C亚型gp120基因转入人外周血单核细胞来源的DC,构建了以DC为载体的治疗性疫苗,并对其功能进行初步研究,发现负载gp120的DC能够显著刺激淋巴细胞的增殖、增强CD8T细胞表面活化分子CD25的表达以及促进CD8T细胞分泌++IFN-γ,为下一步DC治疗性疫苗的体内研究奠定了基础。
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A major goal in vaccine development is elimination of the ‘cold chain’, the transport and storage system for maintenance and distribution of the vaccine product. This is particularly pertinent to liquid formulation of vaccines. We have previously described the rod-insert vaginal ring (RiR) device, comprising an elastomeric body into which are inserted lyophilised, rod-shaped, solid drug dosage forms, and having potential for sustained mucosal delivery of biomacromolecules, such as HIV envelope protein-based vaccine candidates. Given the solid, lyophilised nature of these insert dosage forms, we hypothesised that antigen stability may be significantly increased compared with more conventional solubilised vaginal gel format. In this study, we prepared and tested vaginal ring devices fitted with lyophilised rod inserts containing the model antigen bovine serum albumin (BSA). Both the RiRs and the gels that were freeze-dried to prepare the inserts were evaluated for BSA stability using PAGE, turbidimetry, microbial load, MALDI-TOF and qualitative precipitate solubility measurements. When stored at 4 oC, but not when stored at 40 oC / 75% RH, the RiR formulation offered protection against structural and conformational changes to BSA. The insert also retained matrix integrity and release characteristics. The results demonstrate that lypophilised gels can provide relative protection against degradation at lower temperatures compared to semi-solid gels. The major mechanism of degradation at 40 oC / 75% RH was shown to be protein aggregation. Finally, in a preliminary study, we found that addition of trehalose to the formulation significantly reduces the rate of BSA degradation as compared to the original formulation when stored at 40 oC /75% RH. Establishing the mechanism of degradation, and finding that degradation is decelerated in the presence of trehalose, will help inform further development of RiRs specifically and polymer based freeze-dried systems in general.
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Disulfide bonding contributes to the function and antigenicity of many viral envelope glycoproteins. We assessed here its significance for the hepatitis C virus E2 envelope protein and a counterpart deleted for hypervariable region-1 (HVR1). All 18 cysteine residues of the antigens were involved in disulfides. Chemical reduction of up to half of these disulfides was compatible with anti-E2 monoclonal antibody reaction, CD81 receptor binding, and viral entry, whereas complete reduction abrogated these properties. The addition of 5,5'-dithiobis-2-nitrobenzoic acid had no effect on viral entry. Thus, E2 function is only weakly dependent on its redox status, and cell entry does not require redox catalysts, in contrast to a number of enveloped viruses. Because E2 is a major neutralizing antibody target, we examined the effect of disulfide bonding on E2 antigenicity. We show that reduction of three disulfides, as well as deletion of HVR1, improved antibody binding for half of the patient sera tested, whereas it had no effect on the remainder. Small scale immunization of mice with reduced E2 antigens greatly improved serum reactivity with reduced forms of E2 when compared with immunization using native E2, whereas deletion of HVR1 only marginally affected the ability of the serum to bind the redox intermediates. Immunization with reduced E2 also showed an improved neutralizing antibody response, suggesting that potential epitopes are masked on the disulfide-bonded antigen and that mild reduction may increase the breadth of the antibody response. Although E2 function is surprisingly independent of its redox status, its disulfide bonds mask antigenic domains. E2 redox manipulation may contribute to improved vaccine design.
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The capacity of the surface glycoproteins of enveloped viruses to mediate virus/cell binding and membrane fusion requires a proper thiol/disulfide balance. Chemical manipulation of their redox state using reducing agents or free sulfhydryl reagents affects virus/cell interaction. Conversely, natural thiol/disulfide rearrangements often occur during the cell interaction to trigger fusogenicity, hence the virus entry. We examined the relationship between the redox state of the 20 cysteine residues of the SARS-CoV (severe acute respiratory syndrome coronavirus) Spike glycoprotein S1 subdomain and its functional properties. Mature S1 exhibited similar to 4 unpaired cysteines, and chemically reduced S1 displaying up to similar to 6 additional unpaired cysteines still bound ACE2 and enabled fusion. In addition, virus/cell membrane fusion occurred in the presence of sulfhydryl-blocking reagents and oxidoreductase inhibitors. Thus, in contrast to various viruses including HIV (human immunodeficiency virus) examined in parallel, the functions of the SARS-CoV Spike glycoprotein exhibit a significant and surprising independence of redox state, which may contribute to the wide host range of the virus. These data suggest clues for molecularly engineering vaccine immunogens.
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We have investigated the role of glycosylation of the envelope glycoprotein E2 of bovine viral diarrhoea virus (BVDV), produced in insect cells, in BVDV infection. When amino acids predicated to code for the C-terminal N-linked glycosylation site were mutated the resulting protein was less efficient than wild type protein at preventing infection of susceptible cells with BVDV. In addition, mutational analysis showed that a further two predicted N-terminal N-linked glycosylation sites of E2 are required for efficient production of recombinant protein. (c) 2005 Elsevier B.V. All rights reserved.
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
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Hepatitis C virus (HCV) envelope protein 2 (E2) is involved in viral binding to host cells. The aim of this work was to produce recombinant E2B and E2Y HCV proteins in Escherichia coli and Pichia pastoris, respectively, and to study their interactions with low-density lipoprotein receptor (LDLr) and CD81 in human umbilical vein endothelial cells (HUVEC) and the ECV304 bladder carcinoma cell line. To investigate the effects of human LDL and differences in protein structure (glycosylated or not) on binding efficiency, the recombinant proteins were either associated or not associated with lipoproteins before being assayed. The immunoreactivity of the recombinant proteins was analysed using pooled serum samples that were either positive or negative for hepatitis C. The cells were immunophenotyped by LDLr and CD81 using flow cytometry. Binding and binding inhibition assays were performed in the presence of LDL, foetal bovine serum (FCS) and specific antibodies. The results revealed that binding was reduced in the absence of FCS, but that the addition of human LDL rescued and increased binding capacity. In HUVEC cells, the use of antibodies to block LDLr led to a significant reduction in the binding of E2B and E2Y. CD81 antibodies did not affect E2B and E2Y binding. In ECV304 cells, blocking LDLr and CD81 produced similar effects, but they were not as marked as those that were observed in HUVEC cells. In conclusion, recombinant HCV E2 is dependent on LDL for its ability to bind to LDLr in HUVEC and ECV304 cells. These findings are relevant because E2 acts to anchor HCV to host cells; therefore, high blood levels of LDL could enhance viral infectivity in chronic hepatitis C patients.
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The Dengue has become a global public health threat, with over 100 million infections annually; to date there is no specific vaccine or any antiviral drug. The structures of the envelope (E) proteins of the four known serotype of the dengue virus (DENV) are already known, but there are insufficient molecular details of their structural behavior in solution in the distinct environmental conditions in which the DENVs are submitted, from the digestive tract of the mosquito up to its replication inside the host cell. Such detailed knowledge becomes important because of the multifunctional character of the E protein: it mediates the early events in cell entry, via receptor endocytosis and, as a class II protein, participates determinately in the process of membrane fusion. The proposed infection mechanism asserts that once in the endosome, at low pH, the E homodimers dissociate and insert into the endosomal lipid membrane, after an extensive conformational change, mainly on the relative arrangement of its three domains. In this work we employ all-atom explicit solvent Molecular Dynamics simulations to specify the thermodynamic conditions in that the E proteins are induced to experience extensive structural changes, such as during the process of reducing pH. We study the structural behavior of the E protein monomer at acid pH solution of distinct ionic strength. Extensive simulations are carried out with all the histidine residues in its full protonated form at four distinct ionic strengths. The results are analyzed in detail from structural and energetic perspectives, and the virtual protein movements are described by means of the principal component analyses. As the main result, we found that at acid pH and physiological ionic strength, the E protein suffers a major structural change; for lower or higher ionic strengths, the crystal structure is essentially maintained along of all extensive simulations. On the other hand, at basic pH, when all histidine residues are in the unprotonated form, the protein structure is very stable for ionic strengths ranging from 0 to 225 mM. Therefore, our findings support the hypothesis that the histidines constitute the hot points that induce configurational changes of E protein in acid pH, and give extra motivation to the development of new ideas for antivirus compound design.
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This PhD thesis discusses the rationale for design and use of synthetic oligosaccharides for the development of glycoconjugate vaccines and the role of physicochemical methods in the characterization of these vaccines. The study concerns two infectious diseases that represent a serious problem for the national healthcare programs: human immunodeficiency virus (HIV) and Group A Streptococcus (GAS) infections. Both pathogens possess distinctive carbohydrate structures that have been described as suitable targets for the vaccine design. The Group A Streptococcus cell membrane polysaccharide (GAS-PS) is an attractive vaccine antigen candidate based on its conserved, constant expression pattern and the ability to confer immunoprotection in a relevant mouse model. Analysis of the immunogenic response within at-risk populations suggests an inverse correlation between high anti-GAS-PS antibody titres and GAS infection cases. Recent studies show that a chemically synthesized core polysaccharide-based antigen may represent an antigenic structural determinant of the large polysaccharide. Based on GAS-PS structural analysis, the study evaluates the potential to exploit a synthetic design approach to GAS vaccine development and compares the efficiency of synthetic antigens with the long isolated GAS polysaccharide. Synthetic GAS-PS structural analogues were specifically designed and generated to explore the impact of antigen length and terminal residue composition. For the HIV-1 glycoantigens, the dense glycan shield on the surface of the envelope protein gp120 was chosen as a target. This shield masks conserved protein epitopes and facilitates virus spread via binding to glycan receptors on susceptible host cells. The broadly neutralizing monoclonal antibody 2G12 binds a cluster of high-mannose oligosaccharides on the gp120 subunit of HIV-1 Env protein. This oligomannose epitope has been a subject to the synthetic vaccine development. The cluster nature of the 2G12 epitope suggested that multivalent antigen presentation was important to develop a carbohydrate based vaccine candidate. I describe the development of neoglycoconjugates displaying clustered HIV-1 related oligomannose carbohydrates and their immunogenic properties.
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Aus der zunehmenden Prävalenz allergischer Erkrankungen vor allem in den Industrienationen ergibt sich ein erhöhter Bedarf an Grundlagenforschung im Bereich von Allergie und Asthma sowie der Entwicklung innovativer Therapiestrategien. In der vorliegenden Dissertation wurden die immundefizienten Mausstämme NOD-Scid und NOD-Scid gc als vielversprechender translationaler Schritt zwischen dem reinen Tiermodell und der Erprobung neuer Therapieansätze an Probanden in klinischen Studien beleuchtet. Im experimentellen Verlauf der Arbeit wurde ein humanisiertes Mausmodell der allergischen Atemwegsentzündung zunächst in immundefizienten NOD-Scid und darauffolgend in NOD-Scid gc Mäusen etabliert. Diese Mausstämme zeichnen sich durch das Nichtvorhandensein von B- und T-Zellen aus. Im NOD-Scid gc Stamm resultiert aus einer zusätzlichen Mutation des Gens für die gamma-Kette des IL-2 Rezeptors der Verlust von natürlichen Killerzellen (NK-Zellen), was die Immunität in diesem Stamm weiter herabsetzt und eine Humanisierung erleichtert. Die Humanisierung der Mäuse erfolgte durch die intraperitoneale Injektion von mononukleären Zellen des peripheren Blutes (PBMCs), die unter Anwendung der Ficoll-Dichtezentrifugation aus dem Blut von Probanden isoliert wurden. Für die Gewinnung der PBMCs wurden zum einen Asthma-Patienten mit einer hochgradigen Sensibilisierung gegen Birkenpollen herangezogen. Zum anderen wurden in Kontrollexperimenten PBMCs nicht-allergischer Probanden verwendet. Während sich für den NOD-Scid Stamm 80 Millionen PBMCs als angemessene Transferzahl erwiesen, reichten für die Rekonstitution des NOD-Scid gc Stammes 5 Millionen PBMCs aus. Eine Analyse der Tiere erfolgte 24 Tage nach Injektion der humanen Zellen. Der Transfer der PBMCs allergischer Asthmatiker führte besonders nach additiver Applikation des Birkenallergens sowie des humanen rekombinanten Zytokins IL-4 und darauffolgender nasaler allergener Provokation zu einer starken pulmonalen Entzündung in den Mäusen. Die nasale Allergenprovokation an den Tagen 20-22 nach PBMC-Transfer erwies sich für das Aufkommen der Inflammation als unbedingt erforderlich. Die nasale Provokation mit Phosphat-gepufferter Salzlösung (PBS) mündete in einer herabgesetzten Inflammation ohne Ausprägung einer Atemwegsüberempfindlichkeit (AHR), reduzierten Zellzahlen in der bronchoalveolären Lavage (BAL) sowie verminderten Frequenzen humaner Zellen in den Lungen von Versuchstieren, die mit atopischen PBMCs supplementiert mit Birkenallergen und IL-4 rekonstituiert wurden. Die Allergenabhängigkeit des etablierten Modells wurde anhand von Experimenten untermauert, die verdeutlichten, dass ein Transfer von PBMCs nicht-allergischer Probanden trotz Zugabe des Allergens und humanem IL-4 keine Atemwegsinflammation auslöste. Bei den humanen Zellen, die an Tag 24 nach Rekonstitution in den Mäusen detektiert werden konnten, handelte es sich hauptsächlich um T-Zellen. Innerhalb dieser CD3+ T-Zellen konnten CD4+ und CD8+ T-Zellen differenziert werden. Depletionsexperimente, in denen nach Gewinnung der PBMCs aus dem Blut der Probanden verschiedene T-Zellsubpopulationen (CD3+, CD4+, CD8+) eliminiert wurden, führten zu dem Befund, dass die allergische Atemwegsentzündung in dem System von humanen CD4+ T-Zellen abhängig war. Nach der Etablierung des humanisierten Mausmodells der allergischen Atemwegsentzündung wurde das System zur Analyse des suppressionsfördernden Potentials des HIV-1 - Hüllproteins gp120 genutzt. Die Applikation von gp120 führte zu einer Reduktion der Atemwegsinflammation. Dies äußerte sich in einer Aufhebung der AHR, verminderten Zellzahlen in der BAL sowie dem reduzierten Einstrom humaner T-Zellen in die Lungen der rekonstituierten Tiere. Weiterhin konnte gezeigt werden, dass die anti-inflammatorische Wirkung des gp120 strikt von der Anwesenheit regulatorischer T-Zellen (Tregs) innerhalb der für die Humanisierung genutzten PBMCs abhängig war. Eine Depletion der Tregs vor Transfer in die Mäuse führte zum Verlust der anti-inflammatorischen Effekte des gp120. Diese Ergebnisse sprechen für die Modulation regulatorischer T-Zellen als hoffnungsvolle Maßnahme in der Behandlung allergischer Erkrankungen. Die im Rahmen dieser Arbeit gewonnenen Erkenntnisse eröffnen innovative Ansätze zur Analyse neuer Therapiestrategien in einem Testsystem, dass die Erforschung humaner Zellinteraktionen sowie die Wirkung potentieller Arzneistoffe auf humane Zellen unter in vivo Bedingungen erlaubt.
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Paramyxoviruses include major pathogens with significant global health and economic impact. This large family of enveloped RNA viruses infects cells by employing two surface glycoproteins that tightly cooperate to fuse their lipid envelopes with the target cell plasma membrane, an attachment and a fusion (F) protein. Membrane fusion is believed to depend on receptor-induced conformational changes within the attachment protein that lead to the activation and subsequent refolding of F. While structural and mechanistic studies have considerably advanced our insight into paramyxovirus cell adhesion and the structural basis of F refolding, how precisely the attachment protein links receptor engagement to F triggering remained poorly understood. Recent reports based on work with several paramyxovirus family members have transformed our understanding of the triggering mechanism of the membrane fusion machinery. Here, we review these recent findings, which (i) offer a broader mechanistic understanding of the paramyxovirus cell entry system, (ii) illuminate key similarities and differences between entry strategies of different paramyxovirus family members, and (iii) suggest new strategies for the development of novel therapeutics.
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The human endogenous retrovirus K (HERV-K) env gene encodes envelope protein comprising surface (SU) and transmembrane (TM) domains. Having shown the exclusive expression of SU in human breast cancer and the stimulation of SU-specific immune responses in patients with breast cancer, our research here confirmed and extended the data by investigating the expression of HERV-K TM envelope domain and the induction of specific immune responses against TM in breast cancer patients. We found HERV-K TM mRNA and protein expression only in human breast cancer cells but not in normal controls. The specific immune responses against TM domain were induced in mice determined by enzyme-linked immunosorbent assay (ELISA) and IFN-γ enzyme-linked immunosorbent spot (ELISPOT) assay. Furthermore, ELISA detected higher titers of anti-HERV-K TM Env IgG antibodies in sera of breast cancer patients. In addition, the magnitude of the anti-HERV TM B cell response was correlated with the disease stage. Peripheral blood mononuclear cells (PBMCs) before and after in vitro stimulation (IVS) with HERV-K TM from patients with breast cancer as well as healthy controls were tested for T cell responses against HERV-K TM domain by ELISPOT assay. Breast cancer patients (n=21) had stronger HERV-K TM-specific cellular responses than healthy controls (n=12) (P < 0.05). These findings suggest, for the first time, that HERV-K TM expression was enhanced in human breast cancer cells and was able to induce specific B cell and T cell immune responses in breast cancer patients. This study provides support for HERV-K TM as a promising source of antigen for anti-tumor immunotherapy, prevention, diagnosis, and prognosis.
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The outer plastid envelope protein OEP16-1 was previously identified as an amino acid-selective channel protein and translocation pore for NADPH:protochlorophyllide oxidoreductase A (PORA). Reverse genetic approaches used to dissect these mutually not exclusive functions of OEP16-1 in planta have led to descriptions of different phenotypes resulting from the presence of several mutant lines in the SALK_024018 seed stock. In addition to the T-DNA insertion in the AtOEP16-1 gene, lines were purified that contain two additional T-DNA insertions and as yet unidentified point mutations. In a first attempt to resolve the genetic basis of four different lines in the SALK_024018 seed stock, we used genetic transformation with the OEP16-1 cDNA and segregation analyses after crossing out presumed point mutations. We show that AtOEP16-1 is involved in PORA precursor import and by virtue of this activity confers photoprotection onto etiolated seedlings during greening