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1.
Cell ; 176(6): 1420-1431.e17, 2019 03 07.
Artigo em Inglês | MEDLINE | ID: mdl-30849373

RESUMO

Respiratory syncytial virus (RSV) is a worldwide public health concern for which no vaccine is available. Elucidation of the prefusion structure of the RSV F glycoprotein and its identification as the main target of neutralizing antibodies have provided new opportunities for development of an effective vaccine. Here, we describe the structure-based design of a self-assembling protein nanoparticle presenting a prefusion-stabilized variant of the F glycoprotein trimer (DS-Cav1) in a repetitive array on the nanoparticle exterior. The two-component nature of the nanoparticle scaffold enabled the production of highly ordered, monodisperse immunogens that display DS-Cav1 at controllable density. In mice and nonhuman primates, the full-valency nanoparticle immunogen displaying 20 DS-Cav1 trimers induced neutralizing antibody responses ∼10-fold higher than trimeric DS-Cav1. These results motivate continued development of this promising nanoparticle RSV vaccine candidate and establish computationally designed two-component nanoparticles as a robust and customizable platform for structure-based vaccine design.


Assuntos
Anticorpos Neutralizantes/imunologia , Vírus Sinciciais Respiratórios/imunologia , Vacinação/métodos , Animais , Anticorpos Neutralizantes/metabolismo , Anticorpos Antivirais/imunologia , Caveolina 1 , Linhagem Celular , Células HEK293 , Humanos , Camundongos , Camundongos Endogâmicos BALB C , Nanopartículas/uso terapêutico , Cultura Primária de Células , Vírus Sinciciais Respiratórios/patogenicidade , Vacinas/imunologia , Proteínas Virais de Fusão/imunologia , Proteínas Virais de Fusão/metabolismo , Proteínas Virais de Fusão/fisiologia
2.
Annu Rev Cell Dev Biol ; 30: 111-39, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25000995

RESUMO

In biomembrane fusion pathways, membranes are destabilized through insertions of amphipathic protein segments, lipid reorganization via hemifusion, protein restructuring, and dimpling of the membranes. Four classes of membrane proteins are known in virus and cell fusion. Class I virus-cell fusion proteins (fusogens) are α-helix-rich prefusion trimers that form coiled-coil structures that insert hydrophobic fusion peptides or loops (FPs or FLs) into membranes and refold into postfusion trimers. Class II virus-cell fusogens are ß-sheet-rich prefusion homo- or heterodimers that insert FLs into membranes, ending in postfusion trimers. Class III virus-cell fusogens are trimers with both α-helices and ß-sheets that dissociate into monomers, insert FLs into membranes, and oligomerize into postfusion trimers. Class IV reoviral cell-cell fusogens are small proteins with FLs that oligomerize to fuse membranes. Class I cell-cell fusogens (Syncytins) were captured by mammals from retroviruses, and class II cell-cell fusogens (EFF-1/AFF-1) fuse membranes via homotypic zippering. Mechanisms and fusogens for most cell fusion events are unknown.


Assuntos
Fusão Celular , Fusão de Membrana , Proteínas Virais de Fusão/fisiologia , Animais , Produtos do Gene env/fisiologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/fisiologia , Humanos , Glicoproteínas de Membrana/fisiologia , Modelos Moleculares , Ressonância Magnética Nuclear Biomolecular , Proteínas da Gravidez/fisiologia , Conformação Proteica , Relação Estrutura-Atividade , Proteínas do Envelope Viral/fisiologia , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/classificação , Produtos do Gene env do Vírus da Imunodeficiência Humana/fisiologia
3.
J Virol ; 95(20): e0066621, 2021 09 27.
Artigo em Inglês | MEDLINE | ID: mdl-34288734

RESUMO

Cedar virus (CedV) is a nonpathogenic member of the Henipavirus (HNV) genus of emerging viruses, which includes the deadly Nipah (NiV) and Hendra (HeV) viruses. CedV forms syncytia, a hallmark of henipaviral and paramyxoviral infections and pathogenicity. However, the intrinsic fusogenic capacity of CedV relative to NiV or HeV remains unquantified. HNV entry is mediated by concerted interactions between the attachment (G) and fusion (F) glycoproteins. Upon receptor binding by the HNV G head domain, a fusion-activating G stalk region is exposed and triggers F to undergo a conformational cascade that leads to viral entry or cell-cell fusion. Here, we demonstrate quantitatively that CedV is inherently significantly less fusogenic than NiV at equivalent G and F cell surface expression levels. We then generated and tested six headless CedV G mutants of distinct C-terminal stalk lengths, surprisingly revealing highly hyperfusogenic cell-cell fusion phenotypes 3- to 4-fold greater than wild-type CedV levels. Additionally, similarly to NiV, a headless HeV G mutant yielded a less pronounced hyperfusogenic phenotype compared to wild-type HeV. Further, coimmunoprecipitation and cell-cell fusion assays revealed heterotypic NiV/CedV functional G/F bidentate interactions, as well as evidence of HNV G head domain involvement beyond receptor binding or G stalk exposure. All evidence points to the G head/stalk junction being key to modulating HNV fusogenicity, supporting the notion that head domains play several distinct and central roles in modulating stalk domain fusion promotion. Further, this study exemplifies how CedV may help elucidate important mechanistic underpinnings of HNV entry and pathogenicity. IMPORTANCE The Henipavirus genus in the Paramyxoviridae family includes the zoonotic Nipah (NiV) and Hendra (HeV) viruses. NiV and HeV infections often cause fatal encephalitis and pneumonia, but no vaccines or therapeutics are currently approved for human use. Upon viral entry, Henipavirus infections yield the formation of multinucleated cells (syncytia). Viral entry and cell-cell fusion are mediated by the attachment (G) and fusion (F) glycoproteins. Cedar virus (CedV), a nonpathogenic henipavirus, may be a useful tool to gain knowledge on henipaviral pathogenicity. Here, using homotypic and heterotypic full-length and headless CedV, NiV, and HeV G/F combinations, we discovered that CedV G/F are significantly less fusogenic than NiV or HeV G/F, and that the G head/stalk junction is key to modulating cell-cell fusion, refining the mechanism of henipaviral membrane fusion events. Our study exemplifies how CedV may be a useful tool to elucidate broader mechanistic understanding for the important henipaviruses.


Assuntos
Henipavirus/metabolismo , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/metabolismo , Células Gigantes/metabolismo , Glicoproteínas/genética , Células HEK293 , Henipavirus/genética , Infecções por Henipavirus/metabolismo , Infecções por Henipavirus/virologia , Humanos , Fusão de Membrana/fisiologia , Receptores Virais/metabolismo , Proteínas do Envelope Viral/genética , Proteínas Virais de Fusão/fisiologia , Ligação Viral , Internalização do Vírus
4.
J Virol ; 93(13)2019 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-30971473

RESUMO

Nipah and Hendra viruses (NiV and HeV) exhibit high lethality in humans and are biosafety level 4 (BSL-4) paramyxoviruses in the growing genus Henipavirus The attachment (G) and fusion (F) envelope glycoproteins are both required for viral entry into cells and for cell-cell fusion, which is pathognomonic of henipaviral infections. Here, we compared the fusogenic capacities between homologous and heterologous pairs of NiV and HeV glycoproteins. Importantly, to accurately measure their fusogenic capacities, as these depend on glycoprotein cell surface expression (CSE) levels, we inserted identical extracellular tags to both fusion (FLAG tags) or both attachment (hemagglutinin [HA] tags) glycoproteins. Importantly, these tags were placed in extracellular sites where they did not affect glycoprotein expression or function. NiV and HeV glycoproteins induced comparable levels of homologous HEK293T cell-cell fusion. Surprisingly, however, while the heterologous NiV F/HeV G (NF/HG) combination yielded a hypofusogenic phenotype, the heterologous HeV F/NiV G (HF/NG) combination yielded a hyperfusogenic phenotype. Pseudotyped viral entry levels primarily corroborated the fusogenic phenotypes of the glycoprotein pairs analyzed. Furthermore, we constructed G and F chimeras that allowed us to map the overall regions in G and F that contributed to these hyperfusogenic or hypofusogenic phenotypes. Importantly, the fusogenic phenotypes of the glycoprotein combinations negatively correlated with the avidities of F-G interactions, supporting the F/G dissociation model of henipavirus-induced membrane fusion, even in the context of heterologous glycoprotein pairs.IMPORTANCE The NiV and HeV henipaviruses are BSL-4 pathogens transmitted from bats. NiV and HeV often lead to human death and animal diseases. The formation of multinucleated cells (syncytia) is a hallmark of henipaviral infections and is caused by fusion of cells coordinated by interactions of the viral attachment (G) and fusion (F) glycoproteins. We found via various assays that viral entry and syncytium formation depend on the viral origin of the glycoproteins, with HeV F and NiV G promoting higher membrane fusion levels than their counterparts. This is important knowledge, since both viruses use the same bat vector species and potential coinfections of these or subsequent hosts may alter the outcome of disease.


Assuntos
Glicoproteínas/metabolismo , Vírus Hendra/fisiologia , Infecções por Henipavirus/virologia , Vírus Nipah/fisiologia , Fenótipo , Proteínas Virais de Fusão/fisiologia , Células Gigantes/metabolismo , Glicoproteínas/genética , Células HEK293 , Vírus Hendra/genética , Humanos , Fusão de Membrana , Vírus Nipah/genética , Proteínas do Envelope Viral/genética , Proteínas do Envelope Viral/fisiologia , Proteínas Virais de Fusão/genética , Ligação Viral , Internalização do Vírus
5.
Exp Cell Res ; 378(2): 171-181, 2019 05 15.
Artigo em Inglês | MEDLINE | ID: mdl-30880029

RESUMO

Paget's disease (PD) features abnormal osteoclasts (OC) which sharply increase in number and size and then intensely induce bone resorption. The purpose of this study was to determine the direct effects of canine distemper virus (CDV) and its fusion protein and hemagglutinin protein (F + H) on receptor activator of nuclear factor kappa-B ligand (RANKL) induced OC formation in vitro. Immunofluorescence assay, OC morphological and functional detection, intracellular signaling pathway detection, Real-time PCR analysis and ELISA were applied in this study. Immunofluorescence assay provided the conclusive proof that CDV can infect and replicate in RAW264.7 mouse monocyte cell line, primary human peripheral blood mononuclear cells (PBMC) and their further fused OC. Both CDV and F + H significantly promoted OC formation and bone resorption ability induced by RANKL. Meanwhile, intracellular signaling transduction analysis revealed CDV and F + H specifically upregulated the phosphorylation of nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB) and mitogen-activated protein kinase (MAPK) induced by RANKL, respectively. Furthermore, without RANKL stimulation, both CDV and F + H slightly induced OC-like cells formation in RAW264.7 cell line even in the presence of NF-κB inhibitor. F + H upregulate OC differentiation and activity through modulation of NF-κB signaling pathway, and induce OC precursor cells merging dependent on the function of glycoproteins themselves. These results meant that F and H proteins play a pivotal role in CDV supporting OC formation. Moreover, this work further provide a new research direction that F and H proteins in CDV should be considered as a trigger during the pathogenesis of PD.


Assuntos
Vírus da Cinomose Canina/fisiologia , Hemaglutininas Virais/fisiologia , Osteoclastos , Proteínas Virais de Fusão/fisiologia , Animais , Diferenciação Celular/genética , Fusão Celular , Chlorocebus aethiops , Citocinas/metabolismo , Humanos , Camundongos , Proteínas Quinases Ativadas por Mitógeno/metabolismo , NF-kappa B/metabolismo , Osteoclastos/virologia , Ligante RANK/metabolismo , Células RAW 264.7 , Células Vero
6.
J Virol ; 92(17)2018 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-29950412

RESUMO

Natural killer (NK) cells are lymphocytes of the innate immune system capable of killing hazardous cells, including virally infected cells. NK cell-mediated killing is triggered by activating receptors. Prominent among these is the activating receptor NKG2D, which binds several stress-induced ligands, among them major histocompatibility complex (MHC) class I-related chain A (MICA). Most of the human population is persistently infected with human cytomegalovirus (HCMV), a virus which employs multiple immune evasion mechanisms, many of which target NK cell responses. HCMV infection is mostly asymptomatic, but in congenitally infected neonates and in immunosuppressed patients it can lead to serious complications and mortality. Here we discovered that an HCMV protein named UL148A whose role was hitherto unknown is required for evasion of NK cells. We demonstrate that UL148A-deficient HCMV strains are impaired in their ability to downregulate MICA expression. We further show that when expressed by itself, UL148A is not sufficient for MICA targeting, but rather acts in concert with an unknown viral factor. Using inhibitors of different cellular degradation pathways, we show that UL148A targets MICA for lysosomal degradation. Finally, we show that UL148A-mediated MICA downregulation hampers NK cell-mediated killing of HCMV-infected cells. Discovering the full repertoire of HCMV immune evasion mechanisms will lead to a better understanding of the ability of HCMV to persist in the host and may also promote the development of new vaccines and drugs against HCMV.IMPORTANCE Human cytomegalovirus (HCMV) is a ubiquitous pathogen which is usually asymptomatic but that can cause serious complications and mortality in congenital infections and in immunosuppressed patients. One of the difficulties in developing novel vaccines and treatments for HCMV is its remarkable ability to evade our immune system. In particular, HCMV directs significant efforts to thwarting cells of the innate immune system known as natural killer (NK) cells. These cells are crucial for successful control of HCMV infection, and yet our understanding of the mechanisms which HCMV utilizes to elude NK cells is partial at best. In the present study, we discovered that a protein encoded by HCMV which had no known function is important for preventing NK cells from killing HCMV-infected cells. This knowledge can be used in the future for designing more-efficient HCMV vaccines and for formulating novel therapies targeting this virus.


Assuntos
Citomegalovirus/fisiologia , Antígenos de Histocompatibilidade Classe I/genética , Evasão da Resposta Imune , Células Matadoras Naturais/imunologia , Proteínas Virais de Fusão/fisiologia , Linhagem Celular , Citomegalovirus/genética , Citomegalovirus/imunologia , Regulação para Baixo , Humanos , Ativação Linfocitária , Proteínas Virais de Fusão/genética
7.
Biol Pharm Bull ; 42(5): 827-832, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31061326

RESUMO

Human parainfluenza virus type 1 (hPIV1) has two spike glycoproteins, the hemagglutinin-neuraminidase (HN) glycoprotein as a receptor-binding protein and the fusion (F) glycoprotein as a membrane-fusion protein. The F glycoprotein mediates both membrane fusion between the virus and cell and membrane fusion between cells, called syncytium formation. Wild-type C35 strain (WT) of hPIV1 shows little syncytium formation of infected cells during virus growth. In the present study, we isolated a variant virus (Vr) from the WT that showed enhanced syncytium formation of infected cells by using our previously established hPIV1 plaque formation assay. Vr formed a larger focus and showed increased virus growth compared with WT. Sequence analysis of the spike glycoprotein genes showed that the Vr had a single amino acid substitution of Ile to Val at position 131 in the fusion peptide region of the F glycoprotein without any substitutions of the HN glycoprotein. The Vr F glycoprotein showed enhanced syncytium formation in F and HN glycoprotein-expressing cells. Additionally, expression of the Vr F glycoprotein increased the focus area of the WT-infected cells. The single amino acid substitution at position 131 in the F glycoprotein of hPIV1 gives hPIV1 abilities to enhance syncytium formation and increase cell-to-cell spread. The present study supports the possibility that hPIV1 acquires increased virus growth in vitro from promotion of direct cell-to-cell transmission by syncytium formation.


Assuntos
Vírus da Parainfluenza 1 Humana/fisiologia , Proteínas Virais de Fusão/fisiologia , Sequência de Aminoácidos , Animais , Linhagem Celular , Células Gigantes , Proteína HN/química , Proteína HN/fisiologia , Humanos , Macaca mulatta , Valina/química , Proteínas Virais de Fusão/química , Replicação Viral
8.
Virus Genes ; 54(3): 333-342, 2018 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-29516315

RESUMO

Human parainfluenza virus type 3 (hPIV3) is an important respiratory pathogen that causes the majority of viral pneumonia of infants and young children. hPIV3 can infect host cells through the synergistic action of hemagglutinin-neuraminidase (HN) protein and the homotypic fusion (F) protein on the viral surface. HN protein plays a variety of roles during the virus invasion process, such as promoting viral particles to bind to receptors, cleaving sialic acid, and activating the F protein. Crystal structure research shows that HN tetramer adopted a "heads-down" conformation, at least two heads dimmer on flank of the four-helix bundle stalk, which forms a symmetrical interaction interface. The stalk region determines interactions and activation of F protein in specificity, and the heads in down position statically shield these residues. In order to make further research on the function of these amino acids at the hPIV3 HN stalk/head interface, fifteen mutations (8 sites from stalk and 7 sites from head) were engineered into this interface by site-directed mutagenesis in this study. Alanine substitution in this region of hPIV3 HN had various effects on cell fusion promotion, receptor binding, and neuraminidase activity. Besides, L151A also affected surface protein expression efficiency. Moreover, I112A, D120A, and R122A mutations of the stalk region that were masked by global head in down position had influence on the interaction between F and HN proteins.


Assuntos
Aminoácidos/fisiologia , Proteína HN/química , Proteína HN/fisiologia , Vírus da Parainfluenza 3 Humana/química , Vírus da Parainfluenza 3 Humana/fisiologia , Internalização do Vírus , Alanina/química , Linhagem Celular , Membrana Celular/metabolismo , Células Gigantes/virologia , Proteína HN/genética , Hemadsorção , Humanos , Fusão de Membrana/fisiologia , Mutagênese Sítio-Dirigida , Neuraminidase/metabolismo , Vírus da Parainfluenza 3 Humana/genética , Conformação Proteica , Receptores Virais/metabolismo , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/fisiologia
9.
Adv Exp Med Biol ; 1112: 69-78, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-30637691

RESUMO

Membrane fusion is essential in several cellular processes in the existence of eukaryotic cells such as cellular trafficking, compartmentalization, intercellular communication, sexual reproduction, cell division, and endo- and exocytosis. Membrane fusion proceeds in model membranes as well as biological membranes through the rearrangement of lipids. The stalk hypothesis provides a picture of the general nature of lipid rearrangement based on mechanical properties and phase behavior of water-lipid mesomorphic systems. In spite of extensive research on exploring the mechanism of membrane fusion, a clear molecular understanding of intermediate and pore formation is lacking. In addition, the mechanism by which proteins and peptides reduce the activation energy for stalk and pore formation is not yet clear though there are several propositions on how they catalyze membrane fusion. In this review, we have discussed about various putative functions of fusion peptides by which they reduce activation barrier and thus promote membrane fusion. A careful analysis of the discussed effects of fusion peptides on membranes might open up new possibilities for better understanding of the membrane fusion mechanism.


Assuntos
Membrana Celular/fisiologia , Fusão de Membrana , Lipídeos de Membrana/fisiologia , Proteínas Virais de Fusão/fisiologia , Peptídeos/fisiologia , Vírus
10.
J Biol Chem ; 291(28): 14815-25, 2016 Jul 08.
Artigo em Inglês | MEDLINE | ID: mdl-27226547

RESUMO

Avian metapneumovirus (aMPV) fusion (F) protein mediates virus-cell membrane fusion to initiate viral infection, which requires F protein binding to its receptor(s) on the host cell surface. However, the receptor(s) for aMPV F protein is still not identified. All known subtype B aMPV (aMPV/B) F proteins contain a conserved Arg-Asp-Asp (RDD) motif, suggesting that the aMPV/B F protein may mediate membrane fusion via the binding of RDD to integrin. When blocked with integrin-specific peptides, aMPV/B F protein fusogenicity and viral replication were significantly reduced. Specifically we identified integrin αv and/or ß1-mediated F protein fusogenicity and viral replication using antibody blocking, small interfering RNAs (siRNAs) knockdown, and overexpression. Additionally, overexpression of integrin αv and ß1 in aMPV/B non-permissive cells conferred aMPV/B F protein binding and aMPV/B infection. When RDD was altered to RAE (Arg-Ala-Glu), aMPV/B F protein binding and fusogenic activity were profoundly impaired. These results suggest that integrin αvß1 is a functional receptor for aMPV/B F protein-mediated membrane fusion and virus infection, which will provide new insights on the fusogenic mechanism and pathogenesis of aMPV.


Assuntos
Fusão Celular , Metapneumovirus/fisiologia , Infecções por Paramyxoviridae/fisiopatologia , Receptores de Vitronectina/fisiologia , Proteínas Virais de Fusão/fisiologia , Animais , Linhagem Celular , Infecções por Paramyxoviridae/virologia , Replicação Viral
11.
J Virol ; 90(23): 10762-10773, 2016 Dec 01.
Artigo em Inglês | MEDLINE | ID: mdl-27654290

RESUMO

The paramyxoviral family contains many medically important viruses, including measles virus, mumps virus, parainfluenza viruses, respiratory syncytial virus, human metapneumovirus, and the deadly zoonotic henipaviruses Hendra and Nipah virus (NiV). To both enter host cells and spread from cell to cell within infected hosts, the vast majority of paramyxoviruses utilize two viral envelope glycoproteins: the attachment glycoprotein (G, H, or hemagglutinin-neuraminidase [HN]) and the fusion glycoprotein (F). Binding of G/H/HN to a host cell receptor triggers structural changes in G/H/HN that in turn trigger F to undergo a series of conformational changes that result in virus-cell (viral entry) or cell-cell (syncytium formation) membrane fusion. The actual regions of G/H/HN and F that interact during the membrane fusion process remain relatively unknown though it is generally thought that the paramyxoviral G/H/HN stalk region interacts with the F head region. Studies to determine such interactive regions have relied heavily on coimmunoprecipitation approaches, whose limitations include the use of detergents and the micelle-mediated association of proteins. Here, we developed a flow-cytometric strategy capable of detecting membrane protein-protein interactions by interchangeably using the full-length form of G and a soluble form of F, or vice versa. Using both coimmunoprecipitation and flow-cytometric strategies, we found a bidentate interaction between NiV G and F, where both the stalk and head regions of NiV G interact with F. This is a new structural-biological finding for the paramyxoviruses. Additionally, our studies disclosed regions of the NiV G and F glycoproteins dispensable for the G and F interactions. IMPORTANCE: Nipah virus (NiV) is a zoonotic paramyxovirus that causes high mortality rates in humans, with no approved treatment or vaccine available for human use. Viral entry into host cells relies on two viral envelope glycoproteins: the attachment (G) and fusion (F) glycoproteins. Binding of G to the ephrinB2 or ephrinB3 cell receptors triggers conformational changes in G that in turn cause F to undergo conformational changes that result in virus-host cell membrane fusion and viral entry. It is currently unknown, however, which specific regions of G and F interact during membrane fusion. Past efforts to determine the interacting regions have relied mainly on coimmunoprecipitation, a technique with some pitfalls. We developed a flow-cytometric assay to study membrane protein-protein interactions, and using this assay we report a bidentate interaction whereby both the head and stalk regions of NiV G interact with NiV F, a new finding for the paramyxovirus family.


Assuntos
Vírus Nipah/fisiologia , Proteínas do Envelope Viral/fisiologia , Animais , Linhagem Celular , Citometria de Fluxo/métodos , Células HEK293 , Humanos , Imunoprecipitação , Modelos Biológicos , Vírus Nipah/genética , Vírus Nipah/patogenicidade , Fragmentos de Peptídeos/química , Fragmentos de Peptídeos/genética , Fragmentos de Peptídeos/fisiologia , Domínios e Motivos de Interação entre Proteínas , Solubilidade , Proteínas do Envelope Viral/química , Proteínas do Envelope Viral/genética , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/fisiologia , Ligação Viral , Internalização do Vírus
12.
Microb Pathog ; 107: 81-87, 2017 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-28330747

RESUMO

Peste des petits ruminants virus (PPRV), belonging to paramyxoviruses, has six structure proteins (such as matrix protein (M), nucleocapsid proteins (N), fusion protein (F) and hemagglutinin protein (H)) and could cause high morbidity and mortality in sheep and goats. Although a vaccine strain of PPRV has been rescued and co-expression of M and N could yield PPRV-like particles, the roles of structure proteins in virion assembly and release have not been investigated in detail. In this study, plasmids carrying PPRV cDNA sequences encoding the N, M, H, and F proteins were expressed in Vero cells. The co-expression of all four proteins resulted in the release of virus-like particles (VLPs) with similar release efficiency to that of authentic virions. Moreover, the co-expression of M together with F also resulted in efficient VLPs release. In the absence of M protein, the expression of no combination of the other proteins resulted in particle release. In summary, a VLPs production system for PPRV has been established and M protein is necessary for promoting the assembly and release of VLPs, of which the predominant protein is M protein. Further study will be focused on the immunogenicity of the VLPs.


Assuntos
Vírus da Peste dos Pequenos Ruminantes/metabolismo , Vírus da Peste dos Pequenos Ruminantes/fisiologia , Células Vero/metabolismo , Proteínas da Matriz Viral/metabolismo , Animais , Anticorpos Antivirais , Chlorocebus aethiops/metabolismo , Chlorocebus aethiops/fisiologia , DNA Complementar , DNA Viral , Hemaglutininas Virais/metabolismo , Hemaglutininas Virais/fisiologia , Camundongos , Proteínas do Nucleocapsídeo/metabolismo , Proteínas do Nucleocapsídeo/fisiologia , Vírus da Peste dos Pequenos Ruminantes/genética , Vírus da Peste dos Pequenos Ruminantes/imunologia , Proteínas Virais de Fusão/metabolismo , Proteínas Virais de Fusão/fisiologia
13.
Arch Virol ; 162(8): 2409-2413, 2017 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-28451903

RESUMO

The bovine parainfluenza virus type 3 BN-CE vaccine strain was obtained by serial passage of the BN-1 strain in chicken embryonic fibroblasts (CEF). We previously identified a substitution (L288I) in the fusion (F) protein between the two strains. To examine the effect of the substitution on CEF adaptation and attenuation, we generated a recombinant BN-1 strain with the L288I substitution in the F protein (FL288I-EGFP). FL288I-EGFP replicated more efficiently than a recombinant BN-1 strain (wt-EGFP) in semi-suitable cell lines, suggesting that the L288I substitution was established in the BN-1 strain during the process of adaptation in CEF.


Assuntos
Adaptação Fisiológica/genética , Substituição de Aminoácidos , Vírus da Parainfluenza 3 Bovina/genética , Vírus da Parainfluenza 3 Bovina/fisiologia , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/fisiologia , Animais , Bovinos , Linhagem Celular , Células HeLa , Humanos , Vírus da Parainfluenza 3 Bovina/crescimento & desenvolvimento , Proteínas Virais de Fusão/química , Replicação Viral
14.
Microsc Microanal ; 23(1): 56-68, 2017 02.
Artigo em Inglês | MEDLINE | ID: mdl-28112080

RESUMO

The bulk of the major core protein VP7 in African horse sickness virus (AHSV) self-assembles into flat, hexagonal crystalline particles in a process appearing unrelated to viral replication. Why this unique characteristic of AHSV VP7 is genetically conserved, and whether VP7 aggregation and particle formation have an effect on cellular biology or the viral life cycle, is unknown. Here we investigated how different small peptide and enhanced green fluorescent protein (eGFP) insertions into the VP7 top domain affected VP7 localization, aggregation, and particle formation. This was done using a dual laser scanning confocal and transmission electron microscopy approach in conjunction with analyses of the solubility, aggregation, and fluorescence profiles of the proteins. VP7 top domain modifications did not prevent trimerization, or intracellular trafficking, to one or two discrete sites in the cell. However, modifications that resulted in a misfolded and insoluble VP7-eGFP component blocked trafficking, and precluded protein accumulation at a single cellular site, perhaps by interfering with normal trimer-trimer interactions. Furthermore, the modifications disrupted the stable layering of the trimers into characteristic AHSV VP7 crystalline particles. It was concluded that VP7 trafficking is driven by a balance between VP7 solubility, trimer forming ability, and trimer-trimer interactions.


Assuntos
Vírus da Doença Equina Africana/metabolismo , Microscopia Confocal/métodos , Microscopia Eletrônica de Transmissão/métodos , Proteínas do Core Viral/fisiologia , Proteínas do Core Viral/ultraestrutura , Vírus da Doença Equina Africana/genética , Animais , Baculoviridae/genética , Regulação Viral da Expressão Gênica , Vetores Genéticos , Proteínas de Fluorescência Verde , Estágios do Ciclo de Vida , Transporte Proteico , Proteínas Recombinantes de Fusão/genética , Proteínas Recombinantes de Fusão/ultraestrutura , Células Sf9 , Proteínas do Core Viral/química , Proteínas do Core Viral/genética , Proteínas Virais de Fusão/fisiologia , Proteínas Virais de Fusão/ultraestrutura , Replicação Viral
15.
Proc Natl Acad Sci U S A ; 110(4): 1458-63, 2013 Jan 22.
Artigo em Inglês | MEDLINE | ID: mdl-23297216

RESUMO

Bat influenza virus H17N10 represents a distinct lineage of influenza A viruses with gene segments coding for proteins that are homologs of the surface antigens, hemagglutinin (HA) and neuraminidase (NA). Our recent study of the N10 NA homolog revealed an NA-like structure, but with a highly divergent putative active site exhibiting little or no NA activity, and provided strong motivation for performing equivalent structural and functional analyses of the H17 HA protein. The overall structure of the H17 HA homolog from A/little yellow-shouldered bat/Guatemala/060/2010 at 3.18 Å resolution is very similar to other influenza HAs, with a putative receptor-binding site containing some conserved aromatic residues that form the base of the sialic acid binding site. However, the rest of the H17 receptor-binding site differs substantially from the other HA subtypes, including substitution of other conserved residues associated with receptor binding. Significantly, electrostatic potential analyses reveal that this putative receptor-binding site is highly acidic, making it unfavorable to bind any negatively charged sialylated receptors, consistent with the recombinant H17 protein exhibiting no detectable binding to sialylated glycans. Furthermore, the fusion mechanism is also distinct; trypsin digestion with recombinant H17 protein, when exposed to pH 4.0, did not degrade the HA1 and HA2, in contrast to other HAs. These distinct structural features and functional differences suggest that the H17 HA behaves very differently compared with other influenza HAs.


Assuntos
Quirópteros/virologia , Glicoproteínas de Hemaglutininação de Vírus da Influenza/fisiologia , Vírus da Influenza A/fisiologia , Sequência de Aminoácidos , Animais , Sítios de Ligação , Configuração de Carboidratos , Sequência de Carboidratos , Cristalografia por Raios X , Glicoproteínas de Hemaglutininação de Vírus da Influenza/química , Glicoproteínas de Hemaglutininação de Vírus da Influenza/genética , Concentração de Íons de Hidrogênio , Vírus da Influenza A/genética , Fusão de Membrana/fisiologia , Modelos Moleculares , Dados de Sequência Molecular , Estrutura Quaternária de Proteína , Receptores Virais/metabolismo , Homologia de Sequência de Aminoácidos , Ácidos Siálicos/química , Eletricidade Estática , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/fisiologia
16.
J Am Chem Soc ; 136(6): 2611-24, 2014 Feb 12.
Artigo em Inglês | MEDLINE | ID: mdl-24428385

RESUMO

Viral fusion proteins catalyze the merger of the virus envelope and the target cell membrane through multiple steps of protein conformational changes. The fusion peptide domain of these proteins is important for membrane fusion, but how it causes membrane curvature and dehydration is still poorly understood. We now use solid-state NMR spectroscopy to investigate the conformation, topology, and lipid and water interactions of the fusion peptide of the PIV5 virus F protein in three lipid membranes, POPC/POPG, DOPC/DOPG, and DOPE. These membranes allow us to investigate the effects of lipid chain disorder, membrane surface charge, and intrinsic negative curvature on the fusion peptide structure. Chemical shifts and spin diffusion data indicate that the PIV5 fusion peptide is inserted into all three membranes but adopts distinct conformations: it is fully α-helical in the POPC/POPG membrane, adopts a mixed strand/helix conformation in the DOPC/DOPG membrane, and is primarily a ß-strand in the DOPE membrane. (31)P NMR spectra show that the peptide retains the lamellar structure and hydration of the two anionic membranes. However, it dehydrates the DOPE membrane, destabilizes its inverted hexagonal phase, and creates an isotropic phase that is most likely a cubic phase. The ability of the ß-strand conformation of the fusion peptide to generate negative Gaussian curvature and to dehydrate the membrane may be important for the formation of hemifusion intermediates in the membrane fusion pathway.


Assuntos
Lipídeos/química , Fusão de Membrana , Peptídeos/química , Proteínas Virais de Fusão/química , Sequência de Aminoácidos , Ânions , Espectroscopia de Ressonância Magnética , Conformação Molecular , Dados de Sequência Molecular , Peptídeos/fisiologia , Proteínas Virais de Fusão/fisiologia
17.
J Virol ; 87(17): 9933-8, 2013 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-23804648

RESUMO

The flavivirus fusion protein E contains a "stem" region which is hypothesized to be crucial for driving fusion. This sequence element connects the ectodomain to the membrane anchor, and its structure in the trimeric postfusion conformation is still poorly defined. Using E trimers of tick-borne encephalitis virus with stem truncations of different lengths, we show that the N-terminal part of the stem increases trimer stability and also modulates the trimer structure outside the stem interaction site.


Assuntos
Flavivirus/química , Proteínas Virais de Fusão/química , Sequência de Aminoácidos , Animais , Linhagem Celular , Vírus da Encefalite Transmitidos por Carrapatos/química , Vírus da Encefalite Transmitidos por Carrapatos/genética , Vírus da Encefalite Transmitidos por Carrapatos/fisiologia , Flavivirus/genética , Flavivirus/fisiologia , Modelos Moleculares , Dados de Sequência Molecular , Domínios e Motivos de Interação entre Proteínas , Multimerização Proteica , Estabilidade Proteica , Estrutura Quaternária de Proteína , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Homologia de Sequência de Aminoácidos , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/fisiologia , Internalização do Vírus
18.
Curr Top Microbiol Immunol ; 372: 83-104, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24362685

RESUMO

The two major glycoproteins on the surface of the respiratory syncytial virus (RSV) virion, the attachment glycoprotein (G) and the fusion glycoprotein (F), control the initial phases of infection. G targets the ciliated cells of the airways, and F causes the virion membrane to fuse with the target cell membrane. The F protein is the major target for antiviral drug development, and both G and F glycoproteins are the antigens targeted by neutralizing antibodies induced by infection. In this chapter, we review the structure and function of the RSV surface glycoproteins, including recent X-ray crystallographic data of the F glycoprotein in its pre- and postfusion conformations, and discuss how this information informs antigen selection and vaccine development.


Assuntos
Anticorpos Antivirais/imunologia , Infecções por Vírus Respiratório Sincicial/prevenção & controle , Vacinas contra Vírus Sincicial Respiratório/imunologia , Vírus Sincicial Respiratório Humano/química , Proteínas Virais de Fusão/química , Anticorpos Neutralizantes/imunologia , Antivirais/síntese química , Antivirais/farmacologia , Cílios/imunologia , Cílios/virologia , Humanos , Modelos Moleculares , Conformação Proteica , Receptores Virais/química , Receptores Virais/fisiologia , Mucosa Respiratória/imunologia , Mucosa Respiratória/virologia , Infecções por Vírus Respiratório Sincicial/imunologia , Vacinas contra Vírus Sincicial Respiratório/administração & dosagem , Vírus Sincicial Respiratório Humano/efeitos dos fármacos , Vírus Sincicial Respiratório Humano/imunologia , Proteínas Virais de Fusão/antagonistas & inibidores , Proteínas Virais de Fusão/fisiologia , Vírion/química , Vírion/fisiologia
19.
J Virol ; 86(5): 2600-9, 2012 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-22171273

RESUMO

Paramyxoviruses enter host cells by fusing the viral envelope with a host cell membrane. Fusion is mediated by the viral fusion (F) protein, and it undergoes large irreversible conformational changes to cause membrane merger. The C terminus of PIV5 F contains a membrane-proximal 7-residue external region (MPER), followed by the transmembrane (TM) domain and a 20-residue cytoplasmic tail. To study the sequence requirements of the F protein C terminus for fusion, we constructed chimeras containing the ectodomain of parainfluenza virus 5 F (PIV5 F) and either the MPER, the TM domain, or the cytoplasmic tail of the F proteins of the paramyxoviruses measles virus, mumps virus, Newcastle disease virus, human parainfluenza virus 3, and Nipah virus. The chimeras were expressed, and their ability to cause cell fusion was analyzed. The chimeric proteins were variably expressed at the cell surface. We found that chimeras containing the ectodomain of PIV5 F with the C terminus of other paramyxoviruses were unable to cause cell fusion. Fusion could be restored by decreasing the activation energy of refolding through introduction of a destabilizing mutation (S443P). Replacing individual regions, singly or doubly, in the chimeras with native PIV5 F sequences restored fusion to various degrees, but it did not have an additive effect in restoring activity. Thus, the F protein C terminus may be a specific structure that only functions with its cognate ectodomain. Alanine scanning mutagenesis of MPER indicates that it has a regulatory role in fusion since both hyperfusogenic and hypofusogenic mutations were found.


Assuntos
Paramyxovirinae/química , Paramyxovirinae/genética , Rubulavirus/genética , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/genética , Motivos de Aminoácidos , Sequência de Aminoácidos , Animais , Fusão Celular , Linhagem Celular , Humanos , Dados de Sequência Molecular , Mutagênese , Mutação , Infecções por Paramyxoviridae/veterinária , Infecções por Paramyxoviridae/virologia , Paramyxovirinae/fisiologia , Rubulavirus/química , Rubulavirus/fisiologia , Alinhamento de Sequência , Proteínas Virais de Fusão/metabolismo , Proteínas Virais de Fusão/fisiologia
20.
J Virol ; 86(18): 9843-53, 2012 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-22761366

RESUMO

The recently identified human metapneumovirus (HMPV) is a worldwide respiratory virus affecting all age groups and causing pneumonia and bronchiolitis in severe cases. Despite its clinical significance, no specific antiviral agents have been approved for treatment of HMPV infection. Unlike the case for most paramyxoviruses, the fusion proteins (F) of a number of strains, including the clinical isolate CAN97-83, can be triggered by low pH. We recently reported that residue H435 in the HRB linker domain acts as a pH sensor for HMPV CAN97-83 F, likely through electrostatic repulsion forces between a protonated H435 and its surrounding basic residues, K295, R396, and K438, at low pH. Through site-directed mutagenesis, we demonstrated that a positive charge at position 435 is required but not sufficient for F-mediated membrane fusion. Arginine or lysine substitution at position 435 resulted in a hyperfusogenic F protein, while replacement with aspartate or glutamate abolished fusion activity. Studies with recombinant viruses carrying mutations in this region confirmed its importance. Furthermore, a second region within the F(2) domain identified as being rich in charged residues was found to modulate fusion activity of HMPV F. Loss of charge at residues E51, D54, and E56 altered local folding and overall stability of the F protein, with dramatic consequences for fusion activity. As a whole, these studies implicate charged residues and potential electrostatic interactions in function, pH sensing, and overall stability of HMPV F.


Assuntos
Fusão de Membrana/fisiologia , Metapneumovirus/fisiologia , Proteínas Virais de Fusão/química , Proteínas Virais de Fusão/fisiologia , Substituição de Aminoácidos , Animais , Linhagem Celular , Chlorocebus aethiops , Humanos , Concentração de Íons de Hidrogênio , Fusão de Membrana/genética , Metapneumovirus/genética , Metapneumovirus/patogenicidade , Modelos Moleculares , Mutagênese Sítio-Dirigida , Conformação Proteica , Dobramento de Proteína , Domínios e Motivos de Interação entre Proteínas , Estabilidade Proteica , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Eletricidade Estática , Células Vero , Proteínas Virais de Fusão/genética
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