979 resultados para Viral Envelope Proteins


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The conserved stem domain of influenza virus hemagglutinin (HA) is a target for broadly neutralizing antibodies and a potential vaccine antigen for induction of hetero-subtypic protection. The epitope of 12D1, a previously reported bnAb neutralizing several H3 subtype influenza strains, was putatively mapped to residues 76-106 of the CD-helix, also referred to as long alpha helix (LAH) of the HA stem. A peptide derivative consisting of wt-LAH residues 76-130 conjugated to keyhole limpet hemocyanin was previously shown to confer robust protection in mice against challenge with influenza strains of subtypes H3, H1, and H5 which motivated the present study. We report the design of multiple peptide derivatives of LAH with or without heterologous trimerization sequences and show that several of these are better folded than wt-LAH. However, in contrast to the previous study immunization of mice with wt-LAH resulted in negligible protection against a lethal homologous virus challenge, while some of the newly designed immunogens could confer weak protection. Combined with structural analysis of HA, our data suggest that in addition to LAH, other regions of HA are likely to significantly contribute to the epitope for 12D1 and will be required to elicit robust protection. In addition, a dynamic, flexible conformation of isolated LAH peptide may be required for eliciting a functional anti-viral response. Proteins 2013; 81:1759-1775. (c) 2013 Wiley Periodicals, Inc.

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Identification of viral encoded proteins that interact with RNA-dependent RNA polymerase (RdRp) is an important step towards unraveling the mechanism of replication. Sesbania mosaic virus (SeMV) RdRp was shown to interact strongly with p10 domain of polyprotein 2a and moderately with the protease domain. Mutational analysis suggested that the C-terminal disordered domain of RdRp is involved in the interaction with p10. Coexpression of full length RdRp and p10 resulted in formation of RdRp-p10 complex which showed significantly higher polymerase activity than RdRp alone. Interestingly, C Delta 43 RdRp also showed a similar increase in activity. Thus, p10 acts as a positive regulator of RdRp by interacting with the C-terminal disordered domain of RdRp. (C) 2014 The Authors. Published by Elsevier B.V.

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The application of principles from evolutionary biology has long been used to gain new insights into the progression and clinical control of both infectious diseases and neoplasms. This iterative evolutionary process consists of expansion, diversification and selection within an adaptive landscape - species are subject to random genetic or epigenetic alterations that result in variations; genetic information is inherited through asexual reproduction and strong selective pressures such as therapeutic intervention can lead to the adaptation and expansion of resistant variants. These principles lie at the center of modern evolutionary synthesis and constitute the primary reasons for the development of resistance and therapeutic failure, but also provide a framework that allows for more effective control.

A model system for studying the evolution of resistance and control of therapeutic failure is the treatment of chronic HIV-1 infection by broadly neutralizing antibody (bNAb) therapy. A relatively recent discovery is that a minority of HIV-infected individuals can produce broadly neutralizing antibodies, that is, antibodies that inhibit infection by many strains of HIV. Passive transfer of human antibodies for the prevention and treatment of HIV-1 infection is increasingly being considered as an alternative to a conventional vaccine. However, recent evolution studies have uncovered that antibody treatment can exert selective pressure on virus that results in the rapid evolution of resistance. In certain cases, complete resistance to an antibody is conferred with a single amino acid substitution on the viral envelope of HIV.

The challenges in uncovering resistance mechanisms and designing effective combination strategies to control evolutionary processes and prevent therapeutic failure apply more broadly. We are motivated by two questions: Can we predict the evolution to resistance by characterizing genetic alterations that contribute to modified phenotypic fitness? Given an evolutionary landscape and a set of candidate therapies, can we computationally synthesize treatment strategies that control evolution to resistance?

To address the first question, we propose a mathematical framework to reason about evolutionary dynamics of HIV from computationally derived Gibbs energy fitness landscapes -- expanding the theoretical concept of an evolutionary landscape originally conceived by Sewall Wright to a computable, quantifiable, multidimensional, structurally defined fitness surface upon which to study complex HIV evolutionary outcomes.

To design combination treatment strategies that control evolution to resistance, we propose a methodology that solves for optimal combinations and concentrations of candidate therapies, and allows for the ability to quantifiably explore tradeoffs in treatment design, such as limiting the number of candidate therapies in the combination, dosage constraints and robustness to error. Our algorithm is based on the application of recent results in optimal control to an HIV evolutionary dynamics model and is constructed from experimentally derived antibody resistant phenotypes and their single antibody pharmacodynamics. This method represents a first step towards integrating principled engineering techniques with an experimentally based mathematical model in the rational design of combination treatment strategies and offers predictive understanding of the effects of combination therapies of evolutionary dynamics and resistance of HIV. Preliminary in vitro studies suggest that the combination antibody therapies predicted by our algorithm can neutralize heterogeneous viral populations despite containing resistant mutations.

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BACKGROUND: To our knowledge, the antiviral activity of pegylated interferon alfa-2a has not been studied in participants with untreated human immunodeficiency virus type 1 (HIV-1) infection but without chronic hepatitis C virus (HCV) infection. METHODS: Untreated HIV-1-infected volunteers without HCV infection received 180 microg of pegylated interferon alfa-2a weekly for 12 weeks. Changes in plasma HIV-1 RNA load, CD4(+) T cell counts, pharmacokinetics, pharmacodynamic measurements of 2',5'-oligoadenylate synthetase (OAS) activity, and induction levels of interferon-inducible genes (IFIGs) were measured. Nonparametric statistical analysis was performed. RESULTS: Eleven participants completed 12 weeks of therapy. The median plasma viral load decrease and change in CD4(+) T cell counts at week 12 were 0.61 log(10) copies/mL (90% confidence interval [CI], 0.20-1.18 log(10) copies/mL) and -44 cells/microL (90% CI, -95 to 85 cells/microL), respectively. There was no correlation between plasma viral load decreases and concurrent pegylated interferon plasma concentrations. However, participants with larger increases in OAS level exhibited greater decreases in plasma viral load at weeks 1 and 2 (r = -0.75 [90% CI, -0.93 to -0.28] and r = -0.61 [90% CI, -0.87 to -0.09], respectively; estimated Spearman rank correlation). Participants with higher baseline IFIG levels had smaller week 12 decreases in plasma viral load (0.66 log(10) copies/mL [90% CI, 0.06-0.91 log(10) copies/mL]), whereas those with larger IFIG induction levels exhibited larger decreases in plasma viral load (-0.74 log(10) copies/mL [90% CI, -0.93 to -0.21 log(10) copies/mL]). CONCLUSION: Pegylated interferon alfa-2a was well tolerated and exhibited statistically significant anti-HIV-1 activity in HIV-1-monoinfected patients. The anti-HIV-1 effect correlated with OAS protein levels (weeks 1 and 2) and IFIG induction levels (week 12) but not with pegylated interferon concentrations.

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Foot-and-mouth disease virus (FMDV), a member of the Picornaviridae, is a pathogen of cloven-hoofed animals and causes a disease of major economic importance. Picornavirus-infected cells show changes in cell morphology and rearrangement of cytoplasmic membranes, which are a consequence of virus replication. We show here, by confocal immunofluorescence and electron microscopy, that the changes in morphology of FMDV-infected cells involve changes in the distribution of microtubule and intermediate filament components during infection. Despite the continued presence of centrosomes in infected cells, there is a loss of tethering of microtubules to the microtubule organizing center (MTOC) region. Loss of labeling for -tubulin, but not pericentrin, from the MTOC suggests a targeting of -tubulin (or associated proteins) rather than a total breakdown in MTOC structure. The identity of the FMDV protein(s) responsible was determined by the expression of individual viral nonstructural proteins and their precursors in uninfected cells. We report that the only viral nonstructural protein able to reproduce the loss of -tubulin from the MTOC and the loss of integrity of the microtubule system is FMDV 3Cpro. In contrast, infection of cells with another picornavirus, bovine enterovirus, did not affect -tubulin distribution, and the microtubule network remained relatively unaffected.

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Nidoviruses (arteriviruses, coronaviruses, and roniviruses) are a phylogenetically compact but diverse group of positive-strand RNA viruses that includes important human and animal pathogens. Nidovirus RNA synthesis is mediated by a cytoplasmic membrane-associated replication/transcription complex that includes up to 16 viral nonstructural proteins (nsps), which carry common enzymatic activities, like the viral RNA polymerase, but also unusual and poorly understood RNA-processing functions. Of these, a conserved endoribonuclease (NendoU) is a major genetic marker that is unique to nidoviruses. NendoU activity was previously verified in vitro for the coronavirus nsp15, but not for any of its distantly related orthologs from other nidovirus lineages, like the arterivirus nsp11. Here, we show that the bacterially expressed nsp11 proteins of two arteriviruses, equine arteritis virus and porcine respiratory and reproductive syndrome virus, possess pyrimidine-specific endoribonuclease activity. RNA cleavage was independent of divalent cations in vitro and was greatly reduced by replacement of residues previously implicated in catalysis. Comparative characterization of the NendoU activity in arteriviruses and severe acute respiratory syndrome coronavirus revealed common and distinct features of their substrate requirements and reaction mechanism. Our data provide the first biochemical evidence of endoribonuclease activity associated with arterivirus nsp11 and support the conclusion that this remarkable RNA-processing enzyme, whose substrate in the infected cell remains to be identified, distinguishes nidoviruses from all other RNA viruses.

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Rotavirus nonstructural protein 4 (NSP4) is a protein with pleiotropic properties. It functions in rotavirus morphogenesis, pathogenesis, and is the first described viral enterotoxin. Since many bacterial toxins function as potent mucosal adjuvants, we evaluated whether baculovirus-expressed recombinant simian rotavirus SA11 NSP4 possesses adjuvant activity by co-administering NSP4 with keyhole limpet hemocyanin (KLH), tetanus toxoid (TT) or ovalbumin (OVA) as model antigens in mice. Following intranasal immunization, NSP4 significantly enhanced both systemic and mucosal immune responses to model immunogens, as compared to the control group, in an antigen-specific manner. Both full-length and a cleavage product of SA11 NSP4 had adjuvant activity, localizing this activity to the C-terminus of the protein. NSP4 forms from virulent and avirulent porcine rotavirus OSU strain, and SA11 NSP4 localized within a 2/6-virus-like particle (VLP) also exhibited adjuvant effects. These studies suggest that the rotavirus enterotoxin NSP4 can function as an adjuvant to enhance immune responses for a co-administered antigen.

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Background: Premature aging syndromes recapitulate many aspects of natural aging and provide an insight into this phenomenon at a molecular and cellular level. The progeria syndromes appear to cause rapid aging through disruption of normal nuclear structure. Recently, a coding mutation (c.34G > A [p.A12T]) in the Barrier to Autointegration Factor 1 (BANF1) gene was identified as the genetic basis of Nestor-Guillermo Progeria syndrome (NGPS). This mutation was described to cause instability in the BANF1 protein, causing a disruption of the nuclear envelope structure.

Results: Here we demonstrate that the BANF1 A12T protein is indeed correctly folded, stable and that the observed phenotype, is likely due to the disruption of the DNA binding surface of the A12T mutant. We demonstrate, using biochemical assays, that the BANF1 A12T protein is impaired in its ability to bind DNA while its interaction with nuclear envelope proteins is unperturbed. Consistent with this, we demonstrate that ectopic expression of the mutant protein induces the NGPS cellular phenotype, while the protein localizes normally to the nuclear envelope.

Conclusions: Our study clarifies the role of the A12T mutation in NGPS patients, which will be of importance for understanding the development of the disease.

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The NS1 protein of influenza A viruses is the dedicated viral interferon (IFN)-antagonist. Viruses lacking NS1 protein expression cannot multiply in normal cells but are viable in cells deficient in their ability to produce or respond to IFN. Here we report an unbiased mutagenesis approach to identify positions in the influenza A NS1 protein that modulate the IFN response upon infection. A random library of virus ribonucleoproteins containing circa 40 000 point mutants in NS1 were transferred to infectious virus and amplified in MDCK cells unable to respond to interferon. Viruses that activated the interferon (IFN) response were subsequently selected by their ability to induce expression of green-fluorescent protein (GFP) following infection of A549 cells bearing an IFN promoter-dependent GFP gene. Using this approach we isolated individual mutant viruses that replicate to high titers in IFN-compromised cells but, compared to wild type viruses, induced higher levels of IFN in IFN-competent cells and had a reduced capacity to counteract exogenous IFN. Most of these viruses contained not previously reported NS1 mutations within either the RNA-binding domain, the effector domain or the linker region between them. These results indicate that subtle alterations in NS1 can reduce its effectiveness as an IFN antagonist without affecting the intrinsic capacity of the virus to multiply. The general approach reported here may facilitate the generation of replication-proficient, IFN-inducing virus mutants, that potentially could be developed as attenuated vaccines against a variety of viruses.

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Nonstructural protein 4B (NS4B) plays an essential role in the formation of the hepatitis C virus (HCV) replication complex. It is a relatively poorly characterized integral membrane protein predicted to comprise four transmembrane segments in its central portion. Here, we describe a novel determinant for membrane association represented by amino acids (aa) 40 to 69 in the N-terminal portion of NS4B. This segment was sufficient to target and tightly anchor the green fluorescent protein to cellular membranes, as assessed by fluorescence microscopy as well as membrane extraction and flotation analyses. Circular dichroism and nuclear magnetic resonance structural analyses showed that this segment comprises an amphipathic alpha-helix extending from aa 42 to 66. Attenuated total reflection infrared spectroscopy and glycosylation acceptor site tagging revealed that this amphipathic alpha-helix has the potential to traverse the phospholipid bilayer as a transmembrane segment, likely upon oligomerization. Alanine substitution of the fully conserved aromatic residues on the hydrophobic helix side abrogated membrane association of the segment comprising aa 40 to 69 and disrupted the formation of a functional replication complex. These results provide the first atomic resolution structure of an essential membrane-associated determinant of HCV NS4B.

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The latent membrane protein 1 (LMP1) encoded by the Epstein-Barr virus acts like a constitutively activated receptor of the tumor necrosis factor receptor (TNFR) family and is enriched in lipid rafts. We showed that LMP1 is targeted to lipid rafts in transfected HEK 293 cells, and that the endogenous TNFR-associated factor 3 binds LMP1 and is recruited to lipid rafts upon LMP1 expression. An LMP1 mutant lacking the C-terminal 55 amino acids (Cdelta55) behaves like the wild-type (WT) LMP1 with respect to membrane localization. In contrast, a mutant with a deletion of the 25 N-terminal residues (Ndelta25) does not concentrate in lipid rafts but still binds TRAF3, demonstrating that cell localization of LMP1 was not crucial for TRAF3 localization. Moreover, Ndelta25 inhibited WT LMP1-mediated induction of the transcription factors NF-kappaB and AP-1. Morphological data indicate that Ndelta25 hampers WT LMP1 plasma membrane localization, thus blocking LMP1 function.

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The cellular protease subtilisin kexin isozyme-1 (SKI-1)/site-1 protease (S1P) is implicated in the proteolytic processing of the viral envelope glycoprotein precursor (GPC) of arenaviruses, a step strictly required for production of infectious progeny. The small molecule SKI-1/S1P inhibitor PF-429242 was shown to have anti-viral activity against Old World arenaviruses. Here we extended these studies and show that PF-429242 also inhibits GPC processing and productive infection of New World arenaviruses, making PF-429242 a broadly active anti-arenaviral drug. In combination therapy, PF-429242 potentiated the anti-viral activity of ribavirin, indicating a synergism between the two drugs. A hallmark of arenaviruses is their ability to establish persistent infection in vitro and in vivo. Notably, PF-429242 was able to efficiently and rapidly clear persistent infection by arenaviruses. Interruption of drug treatment did not result in re-emergence of infection, indicating that PF-429242 treatment leads to virus extinction.

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Mémoire numérisé par la Division de la gestion de documents et des archives de l'Université de Montréal.

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Le travail décrit dans ce manuscrit vise à caractériser les voies de résistance aux inhibiteurs de CCR5. Lors d’une première étape, nous avons développé un test phénotypique clonal nous permettant d’une part d’identifier le tropisme viral et d’autre part de mesurer la résistance aux inhibiteurs des CCR5. Des virus à tropisme R5 ou X4 représentant aussi peu que 0,4% d’un mélange de populations virales sont détectables par ce test, démontrant ainsi sa sensibilité. De plus, grâce à son approche clonale, cette technique permet de différencier les virus à tropisme double de populations virales mixtes. Par la suite, nous avons étudié l’impact des mutations dans les régions variables de la protéine gp120 de l’enveloppe du virus VIH-1 sur la résistance aux inhibiteurs de CCR5. Pour ce faire, nous avons généré des virus résistants par passage des isolats CC1/85 et BAL, en présence de concentrations sous-inhibitrices de maraviroc (MVC) et vicriviroc (VCV). Après quelques passages du virus CC1/85 en présence de MVC, certaines sont apparues dans differentes régions de la gp120. Par la suite, nous avons sélectionné trois mutations dans les domaines variables de la gp 120, V169M en V2, L317W en V3 et I408T en V4 pour construire des virus contenant des mutations simples, doubles et triples afin d’évaluer la contribution des mutations individuelles ou combinées au phénotype de résistance. Nous avons déterminé la sensibilité de chaque mutant à MVC et VCV, le pourcentage d’infectivité et le tropisme viral par rapport au phénotype sauvage. Tous les mutants ont conservé le tropisme R5 et ont montré une diminution d’infectivité par rapport au contrôle. Nos résultats ont montré que les mutants qui portent des mutations en V4 (I408T) ont eu le plus d'impact sur la susceptibilité au MVC. Finalement, nous avons voulu évaluer l’activité antivirale d’un nouvel inhibiteur de CCR5, VCH-286 avec d’autres inhibiteurs de CCR5 tels que MVC et VVC ainsi que ses interactions avec des médicaments représentatifs de différentes classes d’antirétroviraux ARV employés en clinique pour traiter le HIV/SIDA., afin d’évaluer si ces médicaments pourraient être utilisés dans un même régime thérapeutique. Nous avons tout d’abord évalué indépendamment l’activité antivirale des trois inhibiteurs de CCR5 : VCH-286, MVC et VVC. Par la suite nous avons évalué les interactions de VCH-286 avec MVC et VVC. Finalement nous avons évalué les interactions de VCH-286 avec d’autres médicaments antirétroviraux. Ces études ont montré que VCH-286 est un inhibiteur puissant de CCR5 avec une activité antivirale in vitro de l’ordre du nanomolaire et des interactions médicamenteuses favorables avec la majorité des ARV tels que les inhibiteurs de transcriptase inverse, de protéase, d’intégrase, et de fusion employés en clinique pour traiter le VIH/SIDA et des interactions allant de synergie à l'antagonisme avec les inhibiteurs de CCR5. Nos résultats montrent que la plasticité de l’enveloppe virale du VIH-1 a des répercussions sur la résistance aux inhibiteurs de CCR5, le tropisme et la possible utilisation de ces molécules en combinaison avec d’autres molécules appartenant à la même classe.

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Introduction. Le VIH-1 évolue en fonction de la réponse immunitaire spécifique de l’hôte. La pression sélective exercée par la réponse immunitaire VIH-spécifique de l’hôte entraine l’évolution des gènes viraux et à terme détermine l’évolution de la maladie. Cette évolution du virus à l’échelle d’un individu façonne également l’évolution du virus à l’échelle de la population et détermine le devenir de l’épidémie. Le VIH utilise les corécepteurs d’entrée CCR5 (virus R5) et CXCR4 (virus X4) afin d’infecter la cellule cible, et l’évolution du tropisme du virus de R5 vers X4, appelé switch du tropisme, est associé à la progression de la maladie. Les virus R5 sont rencontrés en début d’infection tandis que les virus X4 apparaissent en fin de maladie chez un certain de nombre de patients et sont considérés comme plus virulents. La pression sélective immunitaire exercée sur le gène de l’enveloppe (env) peut donc entrainer l’évolution du tropisme du VIH. La grossesse est un état immunitaire particulier considéré comme étant principalement caractérisé par un biais Th2 nécessaire à l’établissement de la tolérance materno-fétale. Le switch de tropisme de R5 vers X4 en grossesse n’a jamais été documenté, de même que l’évolution des déterminants du tropisme à l’échelle de la population. Hypothèses. Les changements immunitaires associés à l’initiation et la progression de la grossesse engendrent des changements dans la pression immunitaire exercée sur l’enveloppe et peuvent favoriser le switch du tropisme. L’évolution du tropisme du VIH-1 peut être observé à l’échelle de la population au même titre que l’évolution de l’enveloppe virale. Objectifs. Analyser l’évolution du tropisme et décrire la pression sélective sur l’enveloppe des femmes enceintes infectées par le VIH-1. Analyser l’évolution des déterminants du tropisme à l’échelle de la population. Méthodes. Nous avons dans un premier temps analysé l’évolution des déterminants du tropisme et déterminé le génotype et phénotype du VIH-1 chez 19 femmes enceintes issues de la cohorte du centre maternel et infantile sur le SIDA de l’hôpital Sainte-Justine (CMIS). Nous avons ensuite caractérisé et comparé la pression sélective exercée sur env, par une méthode bayésienne, chez 31 femmes enceinte et 29 femmes non-enceintes. Enfin, nous avons analysé et comparé des déterminants du tropisme entre des séquences d’enveloppe contemporaines et anciennes, issues des bases de données du NCBI. Résultats. Nos résultats montrent la présence de virus X4 chez la moitié de notre cohorte, et un switch de tropisme de R5 vers X4 chez 5/19 sujets. Les séquences des femmes enceintes présentaient des taux de substitutions plus élevées que celles des femmes non-enceintes. La pression sélective dans la région C2 était plus faible chez les femmes enceintes que chez les femmes non-enceintes, et différait dans 4 positions entre ces 2 groupes. Cette sélection diminuait au cours de la grossesse chez les patientes traitées. Enfin, une accumulation de mutations X4 a été observée dans les séquences R5 contemporaines par rapport aux séquences R5 anciennes. Conclusion. Les changements immunitaires associés à la grossesse semblent induire des modifications subtiles dans la pression sélective exercée sur env, suffisant à influencer l’évolution du tropisme de R5 vers X4. Un switch du tropisme à l’échelle de la population impliquerait une épidémie évoluant vers une plus grande virulence du virus. Nos résultats sont d’importance en ce qui concerne la prophylaxie antirétrovirale pour la santé de la mère et la prévention de la transmission mère-enfant du VIH-1. Ils sont aussi importants concernant l’avenir de la thérapie antirétrovirale dans le contexte d’une épidémie évoluant vers une plus grande virulence